Информационный бюллетень «Статьи» № 26

28.06.2021

С 1 - Математика

1. Артамонов, В.А. Уалбай Утмаханбетович Умирбаев (к шестидесятилетию со дня рождения) / В.А.Артамонов, [и др.] // Успехи математических наук. – 2021. – Т.76, №2. – с.187-192. - Библиогр.:19.
https://doi.org/10.4213/rm9985
2. Бородин, П.А. Михаил Константинович Потапов (к девяностолетию со дня рождения) / П.А.Бородин, [и др.] // Успехи математических наук. – 2021. – Т.76, №2. – с.185-186.
https://doi.org/10.4213/rm9995

С 133 - Дифференциальные и интегральные уравнения

3. Павленко, В.Н. Положительные решения суперлинейных эллиптических задач с разрывными нелинейностями / В.Н.Павленко, Д.К.Потапов // Известия Российской академии наук. Серия математическая. – 2021. – Т.85, №2. – с.95-112. - Библиогр.:30.
https://doi.org/10.4213/im9000

С 133.2 - Уравнения математической физики

4. Liu, W. On General High-Order Solitons and Breathers to a Nonlocal Schrodinger-Boussinesq Equation with a Periodic Line Waves Background / W.Liu, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.7/8. – p.117. - Bibliogr.:81.
https://rjp.nipne.ro//2020_65_7-8/RomJPhys.65.117.pdf

С 135 - Функциональный анализ

5. Бондал, А.И. Теория гомотопов в применении к несмещенным базисам, гармоническому анализу на графах и превратным пучкам / А.И.Бондал, И.Ю.Ждановский // Успехи математических наук. – 2021. – Т.76, №2. – с.3-70. - Библиогр.:56.
https://doi.org/10.4213/rm9983
6. Глызин, С.Д. Об одном классе диффеоморфизмов Аносова на бесконечномерном торе / С.Д.Глызин, [и др.] // Известия Российской академии наук. Серия математическая. – 2021. – Т.85, №2. – с.3-59. - Библиогр.:21.
https://doi.org/10.4213/im9002

С 138 - Геометрия. Риманова геометрия. Геометрия Лобачевского

7. Вербицкий, М.С. Классификация некэлеровых поверхностей и локально конформно кэлерова геометрия / М.С.Вербицкий, [и др.] // Успехи математических наук. – 2021. – Т.76, №2. – с.71-102. - Библиогр.:64.
https://doi.org/10.4213/rm9858

С 139 - Топология

8. Ребело, Дж.С. О разрешении особенностей одномерных слоений на трехмерных многообразиях / Дж.С.Ребело, Э.Рейс // Успехи математических наук. – 2021. – Т.76, №2. – с.103-176. - Библиогр.:34.
https://doi.org/10.4213/rm9993

С 3 - Физика

9. DeWitt, C. The Three Physicists / C.DeWitt, [et al.] // Physics Today. – 2021. – Vol.74, No.3. – p.42-48. - Bibliogr.:7.
https://doi.org/10.1063/PT.3.4700
10. Арсеев, П.И. Памяти Николая Николаевича Сибельдина (20.03.1943 - 24.11.2020) / П.И.Арсеев, [и др.] // Успехи физических наук. – 2021. – Т.191, №3. – с.333-334.
https://doi.org/10.3367/UFNr.2021.02.038926
11. Балега, Ю.Ю. Памяти Михаила Игоревича Панасюка (14.08.1945 - 03.11.2020) / Ю.Ю.Балега, [и др.] // Успехи физических наук. – 2021. – Т.191, №3. – с.331-332.
https://doi.org/10.3367/UFNr.2021.02.038927

С 321 - Классическая механика

12. Tang, R. Оценки жесткости поперечного стыка сборного тоннеля на основе физических представлений / R.Tang, [et al.] // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.62-73. - Библиогр.:19.
https://doi.org/10.17223/00213411/64/3/62
13. Zhao, Q. Исследование механизма взаимосвязи боковых колебаний высокоскоростного поезда на основе сингулярных коэффициентов / Q.Zhao, M.Piao // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.54-61. - Библиогр.:24.
https://doi.org/10.17223/00213411/64/3/54

С 322 - Теория относительности

14. Grigore, D.R. On the Super-Renormalizability of Quantum Gravity in the Linear Approximation / D.R.Grigore // Romanian Journal of Physics. – 2020. – Vol.65, No.1/2. – p.101. - Bibliogr.:7.
https://rjp.nipne.ro//2020_65_1-2/RomJPhys.65.101.pdf
15. Hussain, F. A Note on Proper Conformal Vector Fields of Static Spherically Symmetric Space-Times in f(G) Theory with Perfect Fluid Source / F.Hussain, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.7/8. – p.116. - Bibliogr.:60.
https://rjp.nipne.ro//2020_65_7-8/RomJPhys.65.116.pdf
16. Marciu, M. Quintom Cosmology with Generalized Galileon Corrections / M.Marciu, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.7/8. – p.115. - Bibliogr.:48.
https://rjp.nipne.ro//2020_65_7-8/RomJPhys.65.115.pdf
17. Rothleitner, C. Ultra-Weak Gravitational Field Detected / C.Rothleitner // Nature. – 2021. – Vol.591, No.7849. – p.209-210. - Bibliogr.:15.
https://doi.org/10.1038/d41586-021-00591-1
18. Westphal, T. Measurement of Gravitational Coupling between Millimetre-Sized Masses / T.Westphal, [et al.] // Nature. – 2021. – Vol.591, No.7849. – p.225-228. - Bibliogr.:49.
https://doi.org/10.1038/s41586-021-03250-7
19. Игнатьев, Ю.Г. Исследование полной модели космологической эволюции классического скалярного поля с Хиггсовым потенциалом. I. Анализ модели / Ю.Г.Игнатьев, А.Р.Самигуллина // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.136-143. - Библиогр.:11.
https://doi.org/10.17223/00213411/64/3/136
20. Трунин, Д.А. Педагогическое введение в модель Сачдева-Йе-Китаева и двумерную дилатонную гравитацию / Д.А.Трунин // Успехи физических наук. – 2021. – Т.191, №3. – с.225-262. - Библиогр.:175.
https://doi.org/10.3367/UFNr.2020.06.038805

С 323 - Квантовая механика

21. Andersen, U.L. A Step Closer to Optical Quantum Computers / U.L.Andersen // Nature. – 2021. – Vol.591, No.7848. – p.40-41. - Bibliogr.:13.
https://doi.org/10.1038/d41586-021-00488-z
22. Arrazola, J.M. Quantum Circuits with Many Photons on a Programmable Nanophotonic Chip / J.M.Arrazola, [et al.] // Nature. – 2021. – Vol.591, No.7848. – p.54-60. - Bibliogr.:42.
https://doi.org/10.1038/s41586-021-03202-1
23. Calamanciuc, M. Time Evolution of the Gaussian Entropic Discord in a Squeezed Thermal Environment / M.Calamanciuc, A.Isar // Romanian Journal of Physics. – 2020. – Vol.65, No.7/8. – p.119. - Bibliogr.:29.
https://rjp.nipne.ro//2020_65_7-8/RomJPhys.65.119.pdf
24. Isaev, A.P. Yang-Baxter R-Operators for osp Superalgebras / A.P.Isaev, D.Karakhanyan, R.Kirschner // Nuclear Physics B [Electronic resource]. – 2021. – Vol.965. – p.115355. - Bibliogr.:31.
https://doi.org/10.1016/j.nuclphysb.2021.115355
25. Rissland, O.S. Dynamics of RNA – Protein Interactions Studied in Living Cells / O.S.Rissland // Nature. – 2021. – Vol.591, No.7848. – p.39-40. - Bibliogr.:10.
https://doi.org/10.1038/d41586-021-00236-3
26. Saggio, V. Experimental Quantum Speed-Up in Reinforcement Learning Agents / V.Saggio, [et al.] // Nature. – 2021. – Vol.591, No.7849. – p.229-233. - Bibliogr.:33.
https://doi.org/10.1038/s41586-021-03242-7
27. Sharma, D. The Kinetic Landscape of an RNA-Binding Protein in Cells / D.Sharma, [et al.] // Nature. – 2021. – Vol.591, No.7848. – p.152-156. - Bibliogr.:27.
https://doi.org/10.1038/s41586-021-03222-x
28. Зарипов, Р.Г. О тепловом равновесии в расширенной парастатистике неэкстенсивных систем / Р.Г.Зарипов // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.126-131. - Библиогр.:17.
https://doi.org/10.17223/00213411/64/3/126
29. Козлов, В.В. О квантовании линейных систем дифференциальных уравнений с квадратичным инвариантом в гильбертовом пространстве / В.В.Козлов // Успехи математических наук. – 2021. – Т.76, №2. – с.177-178. - Библиогр.:4.
https://doi.org/10.4213/rm9992

С 323.4 - Систематика и модели элементарных частиц. Систематика субчастиц

30. Мусин, Ю.Р. Супервремя и принцип Паули / Ю.Р.Мусин // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.132-135. - Библиогр.:7.
https://doi.org/10.17223/00213411/64/3/132

С 323.5 - Теория взаимодействия частиц при высоких энергиях

31. Punetha, G. Transport Coefficients of Strongly Interacting Quark-Gluon Plasma Using Dual QCD Hadronic Bag / G.Punetha, H.C.Chandola // Romanian Journal of Physics. – 2020. – Vol.65, No.3/4. – p.401. - Bibliogr.:61.
https://rjp.nipne.ro//2020_65_3-4/RomJPhys.65.401.pdf

С 324.1 - Вторично- квантованные локальные теории взаимодействующих полей

32. Bezuglov, M.A. Massive Kite Diagrams with Elliptics / M.A.Bezuglov, A.I.Onishchenko, O.L.Veretin // Nuclear Physics B [Electronic resource]. – 2021. – Vol.963. – p.115302. - Bibliogr.:65.
https://doi.org/10.1016/j.nuclphysb.2020.115302

С 324.1в - Слабые взаимодействия. Теория Вайнберга- Салама и ее модификации

33. Arbuzov, A. The Monte Carlo Program KKMC, for the Lepton or Quark Pair Production at LEP/SLC Energies - Updates of Electroweak Calculations / A.Arbuzov, S.Jadach, Z.Was, [et al.] // Computer Physics Communications [Electronic resource]. – 2021. – Vol.260. – p.107734. - Bibliogr.:18.
https://doi.org/10.1016/j.cpc.2020.107734

С 325 - Статистическая физика и термодинамика

34. Gherghescu, R.A. Atomic Clusters Deposited on Inert Surfaces / R.A.Gherghescu // Romanian Journal of Physics. – 2020. – Vol.65, No.1/2. – p.201. - Bibliogr.:8.
https://rjp.nipne.ro//2020_65_1-2/RomJPhys.65.201.pdf
35. Бибило, Ю.П. О семействах перемычек в модели сильно шунтированного джозефсоновского перехода / Ю.П.Бибило, А.А.Глуцюк // Успехи математических наук. – 2021. – Т.76, №2. – с.179-180. - Библиогр.:9.
https://doi.org/10.4213/rm9982
36. Мировой, Ю.А. Влияние углеродных нанотрубок на микроструктуру и трещиностойкость наноструктурной оксидной керамики / Ю.А.Мировой, [и др.] // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.21-26. - Библиогр.:24.
https://doi.org/17223/00213411/64/3/21

С 325.1 - Точно решаемые и решеточные модели

37. Shi, L. Towards Real-Time Photorealistic 3D Holography with Deep Neural Networks / L.Shi, [et al.] // Nature. – 2021. – Vol.591, No.7849. – p.234-239. - Bibliogr.:50.
https://doi.org/10.1038/s41586-020-03152-0

С 325.4 - Нелинейные системы. Хаос и синергетика. Фракталы

38. Филиппов, А.И. Неравновесные эффекты в сильно диссипативных термодинамических системах / А.И.Филиппов, Н.А.Спиридонова // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.148-160. - Библиогр.:12.
https://doi.org/10.17223/00213411/64/3/148

С 325.8 - Квантовые объекты низкой размерности (за исключением эффектов Холла)

39. Peleshchak, P. The Influence of the Electrically Inactive Impurity on the Energy Spectrum of Electron and Hole in InAs/GaAs Heterostructure with InAs Quantum Dots / P.Peleshchak, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.7/8. – p.610. - Bibliogr.:30.
https://rjp.nipne.ro//2020_65_7-8/RomJPhys.65.610.pdf

С 326 - Квантовая теория систем из многих частиц. Квантовая статистика

40. Jurcisinova, E. Influence of Multisite Interaction on Thermodynamics and Ground-State Degeneracies of Frustrated Magnetic Systems with Pyrochlore Structure: An Exact Theoretical Analysis / E.Jurcisinova, M.Jurcisin // Physica A [Electronic resource]. – 2021. – Vol.561. – p.125237. - Bibliogr.:65.
https://doi.org/10.1016/j.physa.2020.125237

С 33 а - Нанофизика. Нанотехнология

41. Culp, T.E. Nanoscale Control of Internal Inhomogeneity Enhances Water Transport in Desalination Membranes / T.E.Culp, [et al.] // Science. – 2021. – Vol.371, No.6524. – p.72-75. - Bibliogr.:33.
https://doi.org/10.1126/science.abb8518
42. Mali, G.R. Shulin Packages Axonemal Outer Dynein Arms for Ciliary Targeting / G.R.Mali, [et al.] // Science. – 2021. – Vol.371, No.6532. – p.910-915. - Bibliogr.:26.
https://doi.org/10.1126/science.abe0526
43. Назаренко, Н.Н. Влияние пористости на фильтрацию биологической жидкости через двухслойную стенку капилляра / Н.Н.Назаренко, А.Г.Князева // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.40-46. - Библиогр.:13.
https://doi.org/10.17223/00213411/64/3/40
44. Пустовалов, В.К. Зависимости оптических свойств металлических наночастиц, размещенных в различных средах, от их температуры / В.К.Пустовалов, Л.Г.Астафьева // Оптика и спектроскопия. – 2021. – Т.129, №3. – с.307-313. - Библиогр.:24.
https://journals.ioffe.ru/articles/viewPDF/50657

С 332 - Электромагнитные взаимодействия

45. Todica, M. XRD and FTIR Investigation of the Structural Changes of the Human Tooth Induced by Citric Acid / M.Todica, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.7/8. – p.706. - Bibliogr.:20.
https://rjp.nipne.ro//2020_65_7-8/RomJPhys.65.706.pdf
46. Баландин, С.Ф. Физические процессы в канале распространения импульсов СО 2 -лазера при генерации электрических и магнитных полей / С.Ф.Баландин, [и др.] // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.85-91. - Библиогр.:26.
https://doi.org/10.17223/00213411/64/3/85
47. Бордовицын, В.А. Тензор Герца как основа релятивистской субэлектродинамики / В.А.Бордовицын, [и др.] // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.106-109. - Библиогр.:11.
https://doi.org/10.17223/00213411/64/3/106
48. Жуковский, К.В. Излучение ондуляторов и лазеров на свободных электронах с аналитическим учётом гармоник поля и внеосевых эффектов / К.В.Жуковский // Успехи физических наук. – 2021. – Т.191, №3. – с.318-330. - Библиогр.:64.
https://doi.org/10.3367/UFNr.2020.06.038803
49. Соколов, А.В. Спектральные моменты характеристик бинарных взаимодействий между линейными молекулами / А.В.Соколов, [и др.] // Оптика и спектроскопия. – 2021. – Т.129, №3. – с.253-257. - Библиогр.:17.
https://journals.ioffe.ru/articles/viewPDF/50650

С 341 а - Различные модели ядер

50. Nadtochy, P.N. Potential Energy Models of Excited Compound Nucleus / P.N.Nadtochy, E.G.Ryabov, A.V.Karpov, [et al.] // Computer Physics Communications [Electronic resource]. – 2021. – Vol.258. – p.107605. - Bibliogr.:61.
https://doi.org/10.1016/j.cpc.2020.107605

С 341 е - Ядерная астрофизика

51. Cote, B. 129I and 247Cm in Meteorites Constrain the Last Astrophysical Source of Solar r-Process Elements / B.Cote, [et al.] // Science. – 2021. – Vol.371, No.6532. – p.945-948. - Bibliogr.:36.
https://doi.org/10.1126/science.aba1111

С 341.2 - Свойства атомных ядер

52. Ali, A.H. Calculation the Magnetic Dipole Moments and Quadrupole Moments for Some Exotic Chromium Isotopes Using Different Interactions / A.H.Ali, B.S.Hameed // Romanian Journal of Physics. – 2020. – Vol.65, No.7/8. – p.305. - Bibliogr.:24.
https://rjp.nipne.ro//2020_65_7-8/RomJPhys.65.305.pdf
53. Singh, S. Study of Low-Lying States in 69Ga / S.Singh, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.7/8. – p.304. - Bibliogr.:24.
https://rjp.nipne.ro//2020_65_7-8/RomJPhys.65.304.pdf

С 341.3 - Деление ядер

54. Gherghescu, R.A. Fission Channel Influence on 236Pu Shape Isomer / R.A.Gherghescu // Romanian Journal of Physics. – 2020. – Vol.65, No.3/4. – p.303. - Bibliogr.:6.
https://rjp.nipne.ro//2020_65_3-4/RomJPhys.65.303.pdf

С 343 - Ядерные реакции

55. Carstoiu, F. Rainbow Extinction, Orbiting and Regge Poles / F.Carstoiu, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.1/2. – p.301. - Bibliogr.:39.
https://rjp.nipne.ro//2020_65_1-2/RomJPhys.65.301.pdf
56. Абдулвагабова, С.К. Заселение 0+-возбужденных состояний в реакциях с передачей двух нуклонов / С.К.Абдулвагабова, И.К.Эфендиева // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.121-125. - Библиогр.:16.
https://doi.org/10.17223/00213411/64/3/121

С 343 е - Ядерные реакции с тяжелыми ионами

57. Moiseeva, A.N. Alpha Particle Induced Reactions on 151Eu: Possibility of Production of 152Tb Radioisotope for PET Imaging / A.N.Moiseeva, N.S.Gustova, A.S.Madumarov, N.V.Aksenov, [et al.] // Nuclear Instruments & Methods in Physics Research B [Electronic resource]. – 2021. – Vol.497. – p.59-64. - Bibliogr.:20.
https://doi.org/10.1016/j.nimb.2021.04.007

С 344.1 - Методы и аппаратура для регистрации элементарных частиц и фотонов

58. Abusleme, A. Optimization of the JUNO Liquid Scintillator Composition Using a Daya Bay Antineutrino Detector / A.Abusleme, N.Anfimov, T.Antoshkina, D.Biare, I.Butorov, A.Chukanov, A.Chuvashova, S.Dmitrievsky, A.Fatkina, D.Fedoseev, M.Gonchar, O.Gorchakov, Y.Gornushkin, V.Gromov, D.Korablev, A.Krasnoperov, Z.Krumshteyn, N.Kutovskiy, Y.Malyshkin, N.Morozov, D.V.Naumov, E.Naumova, I.Nemchenok, A.Olshevskiy, T.Rezinko, A.Rybnikov, A.Sadovsky, D.Selivanov, A.Selyunin, V.Shutov, O.Smirnov, A.Sotnikov, K.Treskov, [et al.] // Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.988. – p.164823. - Bibliogr.:28.
https://doi.org/10.1016/j.nima.2020.164823
59. Bellato, M. Embedded Readout Electronics R&D for the Large PMTs in the JUNO Experiment / M.Bellato, A.Olshevskiy, V.Shutov, Y.Malyshkin, [et al.] // Nuclear Instruments & Methods in Physics Research A[Electronic resource]. – 2021. – Vol.985. – p.164600. - Bibliogr.:20.
https://doi.org/10.1016/j.nima.2020.164600
60. Ceccio, G. Ion Transmission Spectroscopy of Pores Filled with Au Nanoparticles / G.Ceccio, J.Vacik, P.Y.Apel, [et al.] // Nuclear Instruments & Methods in Physics Research B [Electronic resource]. – 2021. – Vol.491. – p.29-33. - Bibliogr.:26.
https://doi.org/10.1016/j.nimb.2021.01.016
61. Karanth, S. Influence of Electron Cooling on the Polarization Lifetime of a Horizontally Polarized Storage Ring Beam / S.Karanth, S.Dymov, V.Shmakova, [et al.] // Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.987. – p.164797. - Bibliogr.:12.
https://doi.org/10.1016/j.nima.2020.164797
62. Kraus, B. Charge Carrier Properties of Single-Crystal CVD Diamond up to 473 K / B.Kraus, N.V.Aksenov, [et al.] // Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.989. – p.164947. - Bibliogr.:33.
https://doi.org/10.1016/j.nima.2020.164947
63. Sugiyama, Y. Pulse Shape Discrimination of Photons and Neutrons in the Energy Range of 0.1 – 2 GeV with the KOTO Un-Doped CsI Calorimeter / Y.Sugiyama, A.S.Kurilin, [et al.] // Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.987. – p.164825. - Bibliogr.:24.
https://doi.org/10.1016/j.nima.2020.164825
64. Zavorka, L. Transmutation Efficiency of the Spallation Neutron Target Measured with the Actinide Sandwiches / L.Zavorka, J.Adam, W.I.Furman, J.Khushvaktov, A.A.Solnyshkin, P.Tichy, V.M.Tsoupko-Sitnikov, S.I.Tyutyunnikov, R.Vespalec, J.Vrzalova, M.Zeman, [et al.] // Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.988. – p.164934. - Bibliogr.:30.
https://doi.org/10.1016/j.nima.2020.164934

С 345 - Ускорители заряженных частиц

65. Wang, X. Superconducting Сyclotron for Flash Therapy / X.Wang, V.Smirnov, S.Vorozhtsov // Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.986. – p.164742. - Bibliogr.:20.
https://doi.org/10.1016/j.nima.2020.164742
66. Xiao, S. Beam Test Results of NDL Low Gain Avalanche Detectors (LGAD) / S.Xiao, N.Atanov, Y.Davydov, S.Malyukov, [et al.] // Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.989. – p.164956. - Bibliogr.:13.
https://doi.org/10.1016/j.nima.2020.164956

С 346.1 - Нейтрино

67. Aartsen, M.G. Detection of a Particle Shower at the Glashow Resonance with IceCube / M.G.Aartsen, [et al.] // Nature. – 2021. – Vol.591, No.7849. – p.220-224. - Bibliogr.:36.
https://doi.org/10.1038/s41586-021-03256-1
68. Agostini, M. Search for Low-Energy Neutrinos from Astrophysical Sources with Borexino / M.Agostini, A.Formozov, M.Gromov, O.Smirnov, A.Sotnikov, A.Vishneva, O.Zaimidoroga, [et al.] // Astroparticle Physics [Electronic resource]. – 2021. – Vol.125. – p.102509. - Bibliogr.:75.
https://doi.org/10.1016/j.astropartphys.2020.102509
69. Clery, D. Rare Cosmic Neutrino Traced to Star-Shredding Black Hole / D.Clery // Science. – 2021. – Vol.371, No.6532. – p.872.
https://doi.org/10.1126/science.371.6532.872
70. Distefano, G. Icy Window on the Physics of Cosmic Neutrinos / G.Distefano // Nature. – 2021. – Vol.591, No.7849. – p.206-207. - Bibliogr.:7.
https://doi.org/10.1038/d41586-021-00486-1

С 347 - Космические лучи

71. Балабин, Ю.В. О вариациях потока космических лучей в конце 24 цикла солнечной активности / Ю.В.Балабин, [и др.] // Известия Российской Академии наук. Серия физическая. – 2021. – Т.85, №3. – с.321-325. - Библиогр.:7.
https://doi.org/10.3103/S1062873821030035
72. Маурчев, Е.А. Моделирование прохождения протонов солнечных космических лучей через атмосферу Земли для событий GLE42 и GLE44 / Е.А.Маурчев, [и др.] // Известия Российской Академии наук. Серия физическая. – 2021. – Т.85, №3. – с.383-387. - Библиогр.:17.
https://doi.org/10.3103/S1062873821030151
73. Маурчев, Е.А. Расчет скорости ионизации во время события GLE с использованием глобальной модели атмосферы Земли и оценка вклада в этот процесс частиц галактических космических лучей с Z > 2 / Е.А.Маурчев, [и др.] // Известия Российской Академии наук. Серия физическая. – 2021. – Т.85, №3. – с.388-392. - Библиогр.:23.
https://doi.org/10.3103/S1062873821030163

С 348 - Ядерные реакторы. Реакторостроение

74. Abdurakhimov, B.A. New Neutron Imaging Facility at the WWR-SM Reactor: Design and First Results / B.A.Abdurakhimov, S.E.Kichanov, E.V.Lukin, D.P.Kozlenko, S.A.Kulikov, V.N.Shvetsov, A.V.Rutkauskas, [et al.] // Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.989. – p.164959. - Bibliogr.:27.
https://doi.org/10.1016/j.nima.2020.164959
75. Verma, A. Nuclear Energy, Ten Years after Fukushima / A.Verma, [et al.] // Nature. – 2021. – Vol.591, No.7849. – p.199-201. - Bibliogr.:12.
https://doi.org/10.1038/d41586-021-00580-4
76. Громов, А.А. Аттестация специализированного источника гамма-излучения, пространственно совмещённого с моделирующим опорным полем нейтронов / А.А.Громов, [и др.] // Измерительная техника. – 2021. – №3. – с.53-57. - Библиогр.:11.
https://doi.org/10.32446/0368-1025it.2021-3-53-57

С 349 - Дозиметрия и физика защиты

77. Acharya, S. Adaptive Proton Therapy for Pediatric Patients: Improving the Quality of the Delivered Plan with On-Treatment MRI / S.Acharya, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.242-251. - Bibliogr.:20.
https://doi.org/10.1016/j.ijrobp.2020.08.036
78. Badita, E. A Possible Use of Optical Fibers in Radiation Monitoring/Dosimetry / E.Badita, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.3/4. – p.902. - Bibliogr.:21.
https://rjp.nipne.ro//2020_65_3-4/RomJPhys.65.902.pdf
79. Benmessaoud, M. Diagnostic Reference Levels for Paediatric Computed Tomography in Morocco: a Nationwide Survey / M.Benmessaoud, [et al.] // Radiation Protection Dosimetry. – 2020. – Vol.191, No.4. – p.400-408. - Bibliogr.:36.
https://doi.org/10.1093/raddos/ncaa170
80. Brady, Z. CT Dosimetry for the Australian Cohort Data Linkage Study / Z.Brady, [et al.] // Radiation Protection Dosimetry. – 2020. – Vol.191, No.4. – p.423-438. - Bibliogr.:41.
https://doi.org/10.1093/rpd/ncaa175
81. Celaya, S. Methodological Approaches to Radon in Water Measurements: Comparative Experiences between Romania and Spain / S.Celaya, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.1/2. – p.804. - Bibliogr.:13.
https://rjp.nipne.ro//2020_65_1-2/RomJPhys.65.804.pdf
82. Chabi, S. Ultra-High-Dose-Rate FLASH and Conventional-Dose-Rate Irradiation Differentially Affect Human Acute Lymphoblastic Leukemia and Normal Hematopoiesis / S.Chabi, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.3. – p.819-829. - Bibliogr.:45.
https://doi.org/10.1016/j.ijrobp.2020.10.012
83. Deju, R. 137Cs Behaviour on Leaching from Mortar to the Aqueous Media / R.Deju, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.1/2. – p.806. - Bibliogr.:10.
https://rjp.nipne.ro//2020_65_1-2/RomJPhys.65.806.pdf
84. Dinescu, I. Radiation Protection Assessment for Commissioning a Fast Neutron Source Based on the p(7Li, n)7Be Inverse Reaction at the 9 MV Tandem Accelerator of IFIN-HH / I.Dinescu, G.Cata-Danil // Romanian Journal of Physics. – 2020. – Vol.65, No.3/4. – p.302. - Bibliogr.:11.
https://rjp.nipne.ro//2020_65_3-4/RomJPhys.65.302.pdf
85. Ioan, M.-R. Radiation Induced Absorption (RIA) - Based Dosimetry / M.-R.Ioan, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.3/4. – p.903. - Bibliogr.:43.
https://rjp.nipne.ro//2020_65_3-4/RomJPhys.65.903.pdf
86. Kim, N. Dose-Response Relationship in Stereotactic Body Radiation Therapy for Hepatocellular Carcinoma: A Pooled Analysis of an Asian Liver Radiation Therapy Group Study / N.Kim, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.464-473. - Bibliogr.:34.
https://doi.org/10.1016/j.ijrobp.2020.09.038
87. Kuzmanovic, P. Natural Radioactivity in Ceramic Tiles Used in Serbian Buildings / P.Kuzmanovic, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.1/2. – p.805. - Bibliogr.:28.
https://rjp.nipne.ro//2020_65_1-2/RomJPhys.65.805.pdf
88. Liu, W.-S. Simultaneous Reduction of Volume and Dose in Clinical Target Volume for Nasopharyngeal Cancer Patients / W.-S.Liu, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.495-504. - Bibliogr.:40.
https://doi.org/10.1016/j.ijrobp.2020.09.034
89. Lo, C.-H. Pretreatment Neutrophil-to-Lymphocyte Ratio Predicts Survival and Liver Toxicity in Patients With Hepatocellular Carcinoma Treated With Stereotactic Ablative Radiation Therapy / C.-H.Lo, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.474-484. - Bibliogr.:43.
https://doi.org/10.1016/j.ijrobp.2020.09.001
90. Mishra, A. 222Rn Exhalation Flux Rate and 226Ra in the Soils of a Copper-Mineralised Area / A.Mishra, [et al.] // Radiation Protection Dosimetry. – 2020. – Vol.191, No.4. – p.465-476. - Bibliogr.:22.
https://doi.org/10.1093/rpd/ncaa174
91. Park, H. Use of Clinical Exposure Index and Deviation Index Based on National Diagnostic Reference Level as Dose-Optimization Tools for General Radiography in Korea / H.Park, [et al.] // Radiation Protection Dosimetry. – 2020. – Vol.191, No.4. – p.439-451. - Bibliogr.:35.
https://doi.org/10.1093/rpd/ncaa185
92. Peciuliene, M. Assessment of Natural Radionuclides in Soil Samples in Specific Areas on the Territory of Lithuania / M.Peciuliene, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.3/4. – p.807. - Bibliogr.:21.
https://rjp.nipne.ro//2020_65_3-4/RomJPhys.65.807.pdf
93. Rafajlovic, S. Towards National Diagnostic Reference Levels for Mammography in Serbia / S.Rafajlovic, [et al.] // Radiation Protection Dosimetry. – 2020. – Vol.191, No.4. – p.477-486. - Bibliogr.:33.
https://doi.org/10.1093/rpd/ncaa173
94. Romano, D. Natural Radioactivity of the Crystalline Basement Rocks of the Peloritani Mountains (North-Eastern Sicily, Italy): Measurements and Radiological Hazard / D.Romano, [et al.] // Radiation Protection Dosimetry. – 2020. – Vol.191, No.4. – p.452-464. - Bibliogr.:63.
https://doi.org/10.1093/rpd/ncaa178
95. Romano, E. Analysis of Radiation Dose/Volume Effect Relationship for Anorectal Morbidity in Children Treated for Pelvic Malignancies / E.Romano, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.231-241. - Bibliogr.:45.
https://doi.org/10.1016/j.ijrobp.2020.08.033
96. Sakoda, A. Methodology for Simple Spot Measurement of Equilibrium Equivalent Radon Concentration / A.Sakoda, [et al.] // Radiation Protection Dosimetry. – 2020. – Vol.191, No.4. – p.383-390. - Bibliogr.:19.
https://doi.org/10.1093/rpd/ncaa176
97. Sarap, N.B. Quantification of Radioisotopic Pollution of Soil from Coal Fired Power Plant Surrounding / N.B.Sarap, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.1/2. – p.802. - Bibliogr.:28.
https://rjp.nipne.ro//2020_65_1-2/RomJPhys.65.802.pdf
98. Tan, B. Study on Radon Concentration Variation During Subway Construction / B.Tan, [et al.] // Radiation Protection Dosimetry. – 2020. – Vol.191, No.4. – p.409-422. - Bibliogr.:23.
https://doi.org/10.1093/rpd/ncaa168
99. Tunyagi, A. An Innovative System for Monitoring Radon and Indoor Air Quality / A.Tunyagi, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.1/2. – p.803. - Bibliogr.:16.
https://rjp.nipne.ro//2020_65_1-2/RomJPhys.65.803.pdf
100. Zadehrafi, M. "MetroMC" Research Group: Computational Physics in Ionizing Radiation Metrology / M.Zadehrafi, [et al.] // Romanian Journal of Physics. – 2020. – Vol.65, No.3/4. – p.808. - Bibliogr.:23.
https://rjp.nipne.ro//2020_65_3-4/RomJPhys.65.808.pdf

С 349 д - Биологическое действие излучений

101. Bedford, J.S. Cell Killing and Chromosome Aberrations by Ionizing Radiations: Brother, Can You Paradigm? / J.S.Bedford, J.M.Brown // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.73-75. - Bibliogr.:17.
https://doi.org/10.1016/j.ijrobp.2020.08.041
102. Brooks, J.B.S. Biophysical Characterization of the Leukemic Bone Marrow Vasculature Reveals Benefits of Neoadjuvant Low-Dose Radiation Therapy / J.B.S.Brooks, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.60-72. - Bibliogr.:54.
https://doi.org/10.1016/j.ijrobp.2020.08.037
103. Buszek, S.M. Disease Control and Patterns of Failure After Proton Beam Therapy for Rhabdomyosarcoma / S.M.Buszek, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.3. – p.718-725. - Bibliogr.:26.
https://doi.org/10.1016/j.ijrobp.2020.09.050
104. Cao, X. High-Resolution pO 2 Imaging Improves Quantification of the Hypoxic Fraction in Tumors During Radiation Therapy / X.Cao, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.603-613. - Bibliogr.:52.
https://doi.org/10.1016/j.ijrobp.2020.09.046
105. Deek, M.P. Patterns of Recurrence and Modes of Progression After Metastasis-Directed Therapy in Oligometastatic Castration-Sensitive Prostate Cancer / M.P.Deek, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.387-395. - Bibliogr.:31.
https://doi.org/10.1016/j.ijrobp.2020.08.030
106. Dyer, B.A. Current Status of Clinical Trials for Cervical and Uterine Cancer Using Immunotherapy Combined with Radiation / B.A.Dyer, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.396-412. - Bibliogr.:91.
https://doi.org/10.1016/j.ijrobp.2020.09.016
107. Goodman, C.R. The Role of Circulating Tumor Cells in Breast Cancer and Implications for Radiation Treatment Decisions / C.R.Goodman, C.W.Speers // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.44-59. - Bibliogr.:107.
https://doi.org/10.1016/j.ijrobp.2020.08.039
108. Greco, C. Conformal Avoidance of Normal Organs at Risk by Perfusion-Modulated Dose Sculpting in Tumor Single-Dose Radiation Therapy / C.Greco, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.288-297. - Bibliogr.:43.
https://doi.org/10.1016/j.ijrobp.2020.08.017
109. Gross, J.P. Proton Radiotherapy to Preserve Fertility and Endocrine Function: A Translational Investigation / J.P.Gross, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.84-94. - Bibliogr.:46.
https://doi.org/10.1016/j.ijrobp.2020.07.2320
110. Helm, A. Reduction of Lung Metastases in a Mouse Osteosarcoma Model Treated with Carbon Ions and Immune Checkpoint Inhibitors / A.Helm, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.594-602. - Bibliogr.:47.
https://doi.org/10.1016/j.ijrobp.2020.09.041
111. Huang, T. Radiation Therapy – Induced Changes of the Nasopharyngeal Commensal Microbiome in Nasopharyngeal Carcinoma Patients / T.Huang, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.145-150. - Bibliogr.:17.
https://doi.org/10.1016/j.ijrobp.2020.08.054
112. Jackson, W.C. Individualized Adaptive Radiation Therapy Allows for Safe Treatment of Hepatocellular Carcinoma in Patients with Child-Turcotte-Pugh B Liver Disease / W.C.Jackson, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.212-219. - Bibliogr.:24.
https://doi.org/10.1016/j.ijrobp.2020.08.046
113. Lalani, N. Breast Cancer Molecular Subtype as a Predictor of Radiation Therapy Fractionation Sensitivity / N.Lalani, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.281-287. - Bibliogr.:14.
https://doi.org/10.1016/j.ijrobp.2020.08.038
114. Lettau, K. Simultaneous Targeting of RSK and AKT Efficiently Inhibits YB-1-Mediated Repair of Ionizing Radiation-Induced DNA Double-Strand Breaks in Breast Cancer Cells / K.Lettau, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.567-580. - Bibliogr.:47.
https://doi.org/10.1016/j.ijrobp.2020.09.005
115. Li, W.-Z. Development of a Prognostic Model to Identify the Suitable Definitive Radiation Therapy Candidates in de Novo Metastatic Nasopharyngeal Carcinoma: A Real-World Study / W.-Z.Li, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.120-139. - Bibliogr.:46.
https://doi.org/10.1016/j.ijrobp.2020.08.045
116. Liu, K.X. A Multi-institutional Comparative Analysis of Proton and Photon Therapy-Induced Hematologic Toxicity in Patients with Medulloblastoma / K.X.Liu, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.3. – p.726-735. - Bibliogr.:43.
https://doi.org/10.1016/j.ijrobp.2020.09.049
117. Loap, P. Combination of Olaparib and Radiation Therapy for Triple Negative Breast Cancer: Preliminary Results of the RADIOPARP Phase 1 Trial / P.Loap, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.436-440. - Bibliogr.:19.
https://doi.org/10.1016/j.ijrobp.2020.09.032
118. Mahmood, U. A Randomized Phase 2 Study of Pembrolizumab with or Without Radiation in Patients with Recurrent or Metastatic Adenoid Cystic Carcinoma / U.Mahmood, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.134-144. - Bibliogr.:39.
https://doi.org/10.1016/j.ijrobp.2020.08.018
119. McDowell, L. Locoregional Radiation Therapy for De Novo Metastatic Nasopharyngeal Cancer: One Size Fits All? / L.McDowell, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.131-133. - Bibliogr.:10.
https://doi.org/10.1016/j.ijrobp.2020.10.001
120. Nam, J.-K. Pharmacologic Inhibition of HIF-1 Attenuates Radiation-Induced Pulmonary Fibrosis in a Preclinical Image Guided Radiation Therapy / J.-K.Nam, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.553-566. - Bibliogr.:49.
https://doi.org/10.1016/j.ijrobp.2020.09.006
121. Niemierko, A. Brain Necrosis in Adult Patients After Proton Therapy: Is There Evidence for Dependency on Linear Energy Transfer? / A.Niemierko, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.109-119. - Bibliogr.:36.
https://doi.org/10.1016/j.ijrobp.2020.08.058
122. Pasalic, D. Proton Accelerated Partial Breast Irradiation: Clinical Outcomes at a Planned Interim Analysis of a Prospective Phase 2 Trial / D.Pasalic, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.441-448. - Bibliogr.:34.
https://doi.org/10.1016/j.ijrobp.2020.09.009
123. Patel, R.R. Use of Multi-Site Radiation Therapy for Systemic Disease Control / R.R.Patel, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.352-364. - Bibliogr.:124.
https://doi.org/10.1016/j.ijrobp.2020.08.025
124. Perez, B.A. Prospective Single-Arm Phase 1 and 2 Study: Ipilimumab and Nivolumab with Thoracic Radiation Therapy After Platinum Chemotherapy in Extensive-Stage Small Cell Lung Cancer / B.A.Perez, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.425-435. - Bibliogr.:23.
https://doi.org/10.1016/j.ijrobp.2020.09.031
125. Sammer, M. Normal Tissue Response of Combined Temporal and Spatial Fractionation in Proton Minibeam Radiation Therapy / M.Sammer, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.76-83. - Bibliogr.:17.
https://doi.org/10.1016/j.ijrobp.2020.08.027
126. Sanders, J.W. Fully Balanced SSFP Without an Endorectal Coil for Postimplant QA of MRI-Assisted Radiosurgery (MARS) of Prostate Cancer: A Prospective Study / J.W.Sanders, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.614-625. - Bibliogr.:29.
https://doi.org/10.1016/j.ijrobp.2020.09.040
127. Santos, M. Health-Related Quality of Life Outcomes in Head and Neck Cancer: Results from a Prospective, Real-World Data Study with Brazilian Patients Treated with Intensity Modulated Radiation Therapy, Conformal and Conventional Radiation Techniques / M.Santos, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.485-494. - Bibliogr.:48.
https://doi.org/10.1016/j.ijrobp.2020.09.044
128. Shahhat, S. Do Coordinated Knowledge Translation Campaigns Persuade Radiation Oncologists to Use Single-Fraction Radiation Therapy Compared with Multiple-Fraction Radiation Therapy for Bone Metastases? / S.Shahhat, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.365-373. - Bibliogr.:29.
https://doi.org/10.1016/j.ijrobp.2020.08.056
129. Small Jr., W. NRG Oncology/RTOG Consensus Guidelines for Delineation of Clinical Target Volume for Intensity Modulated Pelvic Radiation Therapy in Postoperative Treatment of Endometrial and Cervical Cancer: An Update / W.Small Jr., [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.413-424. - Bibliogr.:48.
https://doi.org/10.1016/j.ijrobp.2020.08.061
130. Spina, G. Differential Immune Modulation with Carbon-Ion Versus Photon Therapy / G.Spina, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.3. – p.813-818. - Bibliogr.:15.
https://doi.org/10.1016/j.ijrobp.2020.09.053
131. Squires, J.E. Behavioral Determinants of Canadian Radiation Oncologists’ Use of Single Fraction Palliative Radiation Therapy for Uncomplicated Bone Metastases / J.E.Squires, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.374-386. - Bibliogr.:29.
https://doi.org/10.1016/j.ijrobp.2020.09.030
132. Tom, M.C. Use of a Radiation Tumor Bed Boost After Breast-Conserving Surgery and Whole-Breast Irradiation: Time Trends and Correlates / M.C.Tom, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.273-280. - Bibliogr.:21.
https://doi.org/10.1016/j.ijrobp.2020.07.2624
133. Treibel, F. Establishment of Microbeam Radiation Therapy at a Small-Animal Irradiator / F.Treibel, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.626-636. - Bibliogr.:36.
https://doi.org/10.1016/j.ijrobp.2020.09.039
134. Witt, J.S. A Phase 1 Dose Escalation Study of Neoadjuvant SBRT Plus Elective Nodal Radiation with Concurrent Capecitabine for Resectable Pancreatic Cancer / J.S.Witt, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.458-463. - Bibliogr.:14.
https://doi.org/10.1016/j.ijrobp.2020.09.010
135. Woodward, S.G. Trends in Use of Hypofractionated Whole Breast Radiation in Breast Cancer: An Analysis of the National Cancer Database / S.G.Woodward, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.449-457. - Bibliogr.:29.
https://doi.org/10.1016/j.ijrobp.2020.09.004
136. Yuan, R. A Novel Anticancer Therapeutic Strategy to Target Autophagy Accelerates Radiation-Associated Atherosclerosis / R.Yuan, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – p.540-552. - Bibliogr.:48.
https://doi.org/10.1016/j.ijrobp.2020.09.007
137. Zhou, Z. Single High-Dose Radiation Enhances Dendritic Cell Homing and T Cell Priming by Promoting Reactive Oxygen Species-Induced Cytoskeletal Reorganization / Z.Zhou, [et al.] // International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – p.95-108. - Bibliogr.:40.
https://doi.org/10.1016/j.ijrobp.2020.07.2321

С 349.1 - Действие излучения на материалы

138. Mirzayev, M.N. Investigation of the Formation of Defects Under Fast Neutrons and Gamma Irradiation in 3C–SiC Nano Powder / M.N.Mirzayev, B.A.Abdurakhimov, A.A.Donkov, E.Popov, I.G.Genov, K.Siemek, F.Mamedov, D.M.Mirzayeva, M.V.Bulavin, V.A.Turchenko, [et al.] // Physica B [Electronic resource]. – 2021. – Vol.611. – p.412842. - Bibliogr.:42.
https://doi.org/10.1016/j.physb.2021.412842

С 353 - Физика плазмы

139. Зятиков, И.А. Длительность импульса сверхизлучения на ионах молекулярного азота в воздушной лазерной плазме / И.А.Зятиков, [и др.] // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.161-165. - Библиогр.:29.
https://doi.org/10.17223/00213411/64/3/161

С 36 - Физика твердого тела

140. Зуев, Л.Б. Природа упругопластического инварианта деформации / Л.Б.Зуев, С.В.Колосов // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.13-20. - Библиогр.:13.
https://doi.org/10.17223/00213411/64/3/13

С 37 - Оптика

141. Иванова, С.Д. Физические основы измерения длины когерентности с помощью интерферометра с треугольным ходом лучей / С.Д.Иванова, [и др.] // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.166-167. - Библиогр.:7.
https://doi.org/10.17223/00213411/64/3/166
142. Лукин, В.П. Внешний масштаб турбулентности и его влияние на флуктуации оптических волн / В.П.Лукин // Успехи физических наук. – 2021. – Т.191, №3. – с.292-317. - Библиогр.:133.
https://doi.org/10.3367/UFNr.2020.10.038849

С 45 - Физическая химия

143. Zhang, Y. Thermal-Expansion Offset for High-Performance Fuel Cell Cathodes / Y.Zhang, [et al.] // Nature. – 2021. – Vol.591, No.7849. – p.246-251. - Bibliogr.:44.
https://doi.org/10.1038/s41586-021-03264-1

С 63 - Астрофизика

144. Conover, E. Milky Way's Glow is Highly Energetic / E.Conover // Science News. – 2021. – Vol.199, No.4. – p.12-13.
https://www.sciencenews.org/article/milky-way-new-high-energy-light-gamma-glow-secrets-cosmic-rays
145. Бархатов, Н.А. Исследование статистической связи корональных выбросов массы с солнечными вспышками / Н.А.Бархатов, [и др.] // Известия Российской Академии наук. Серия физическая. – 2021. – Т.85, №3. – с.326-330. - Библиогр.:9.
https://doi.org/10.3103/S1062873821030059
146. Грунская, Л.В. Модель воздействия гравитационно-волнового излучения релятивистских двойных звездных систем на электрическое поле в тропосфере / Л.В.Грунская, [и др.] // Известия высших учебных заведений. Физика. – 2021. – Т.64, №3. – с.114-120. - Библиогр.:22.
https://doi.org/10.17223/00213411/64/3/114

Ц 84 а - Вычислительные машины в целом

147. Ball, H. Quantum Firmware and the Quantum Computing Stack / H.Ball, [et al.] // Physics Today. – 2021. – Vol.74, No.3. – p.28-34. - Bibliogr.:18.
https://doi.org/10.1063/PT.3.4698
148. Curty, M. A Quantum Leap in Security / M.Curty, [et al.] // Physics Today. – 2021. – Vol.74, No.3. – p.36-41. - Bibliogr.:18.
https://doi.org/10.1063/PT.3.4699

28.08 - Экология

149. Abbott, T.H. Aerosol Invigoration of Atmospheric Convection Through Increases in Humidity / T.H.Abbott, T.W.Cronin // Science. – 2021. – Vol.371, No.6524. – p.83-85. - Bibliogr.:29.
https://doi.org/10.1126/science.abc5181
150. Samae, V. Stress-Induced Amorphization Triggers Deformation in the Lithospheric Mantle / V.Samae, [et al.] // Nature. – 2021. – Vol.591, No.7848. – p.82-86. - Bibliogr.:62.
https://doi.org/10.1038/s41586-021-03238-3
151. Zhan, Z. Optical Polarization–Based Seismic and Water Wave Sensing on Transoceanic Cables / Z.Zhan, [et al.] // Science. – 2021. – Vol.371, No.6532. – p.931-936. - Bibliogr.:31.
https://doi.org/10.1126/science.abe6648
152. Демин, В.И. Влияние микроклимата на температуру искусственных поверхностей / В.И.Демин, Б.В.Козелов // Известия Российской Академии наук. Серия физическая. – 2021. – Т.85, №3. – с.341-345. - Библиогр.:17.
https://doi.org/10.31857/S0367676521030091
153. Шумилов, О.И. Возможная роль космофизических факторов в возникновении горных ударов и землетрясений / О.И.Шумилов, [и др.] // Известия Российской Академии наук. Серия физическая. – 2021. – Т.85, №3. – с.440-444. - Библиогр.:37.
https://doi.org/10.3103/S1062873821030266

СПИСОК ПРОСМОТРЕННЫХ ЖУРНАЛОВ


1. Astroparticle Physics [Electronic resource]. – 2021. – Vol.125. – Electronic journal. - Title from the title screen.
2. Computer Physics Communications [Electronic resource]. – 2021. – Vol.258. – Electronic journal. - Title from the title screen.
3. Computer Physics Communications [Electronic resource]. – 2021. – Vol.260. – Electronic journal. - Title from the title screen.
4. International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.1. – P.1-304.
5. International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.2. – P.305-646.
6. International Journal of Radiation Oncology. Biology. Physics. – 2021. – Vol.109, No.3. – P.647-838.
7. Nature. – 2021. – Vol.591, No.7848. – P.1-170.
8. Nature. – 2021. – Vol.591, No.7849. – P.171-338.
9. Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.986. – Electronic journal. - Title from the title screen.
10. Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.987. – Electronic journal. - Title from the title screen.
11. Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.988. – Electronic journal. - Title from the title screen.
12. Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.989. – Electronic journal. - Title from the title screen.
13. Nuclear Instruments & Methods in Physics Research A [Electronic resource]. – 2021. – Vol.985. – Electronic journal. - Title from the title screen.
14. Nuclear Instruments & Methods in Physics Research B [Electronic resource]. – 2021. – Vol.491. – Electronic journal. - Title from the title screen.
15. Nuclear Instruments & Methods in Physics Research B [Electronic resource]. – 2021. – Vol.497. – Electronic journal. - Title from the title screen.
16. Nuclear Physics B [Electronic resource]. – 2021. – Vol.963. – Electronic journal. - Title from the title screen.
17. Nuclear Physics B [Electronic resource]. – 2021. – Vol.965. – Electronic journal. - Title from the title screen.
18. Physica A [Electronic resource]. – 2021. – Vol.561. – Electronic journal. - Title from the title screen.
19. Physica B [Electronic resource]. – 2021. – Vol.611. – Electronic journal. - Title from the title screen.
20. Physics Today. – 2021. – Vol.74, No.3.
21. Radiation Protection Dosimetry. – 2020. – Vol.191, No.4. – P.383-500.
22. Romanian Journal of Physics. – 2020. – Vol.65, No.1/2.
23. Romanian Journal of Physics. – 2020. – Vol.65, No.3/4.
24. Romanian Journal of Physics. – 2020. – Vol.65, No.7/8.
25. Science News. – 2021. – Vol.199, No.4.
26. Science. – 2021. – Vol.371, No.6524. – P.1-100.
27. Science. – 2021. – Vol.371, No.6532. – P.861-960.
28. Известия высших учебных заведений. Физика. – 2021. – Т.64, №3.
29. Известия Российской академии наук. Серия математическая. – 2021. – Т.85, №2.
30. Известия Российской Академии наук. Серия физическая. – 2021. – Т.85, №3. – С.305-456.
31. Измерительная техника. – 2021. – №3.
32. Оптика и спектроскопия. – 2021. – Т.129, №3. – С.243-372.
33. Успехи математических наук. – 2021. – Т.76, №2.
34. Успехи физических наук. – 2021. – Т.191, №3. – С.225-336.