
基本信息:
姓名:孙亭亭 籍贯:山东济宁 学历:博士
专业:粒子物理与原子核物理 职称:教授
研究领域:核结构理论、核天体物理、核聚变
研究生导师:博导、硕导
邮箱:ttsunphy@zzu.edu.cn
通讯地址:河南省郑州市高新区郑州大学物理学院A楼611室
教育经历:
(1)2009.9-2015.1, 北京大学,物理学院,博士,导师:孟杰教授
(2)2005.9-2009.6, 西南大学,物理科学与技术学院,本科
工作经历:
(1)2026.1-今,郑州大学,物理学院,教授
(2)2020.1-2025.12,郑州大学,物理学院,副教授
(3)2016.1-2019.12,郑州大学,物理学院,校聘副教授
(4)2015.10-2016.4,日本理化学研究所,博士后,合作导师:Emiko Hiyama教授
(5)2015.5-2015. 12,郑州大学,物理工程学院,讲师
个人荣誉:
(1)2024,河南省优秀青年
(2)2021,郑州大学青年骨干教师
(3)2020,郑州大学青年拔尖人才
研究方向:
(1)奇特原子核的结构性质,包括:连续谱效应、单粒子共振态、形变晕等
(2)奇异核物理,包括:重子-重子强相互作用、超核结构、中子星等
(3)缪子催化核聚变
(4) 自旋赝自旋对称性
(5)协变密度泛函理论,格林函数方法等
主持科研项目:
(1)河南省优秀青年基金,242300421156,2024.1-2026.12,在研
(2)国自然大科学装置联合基金,U2032141,2021.1-2023.12,结题
(3)国自然青年基金,11505157,2016.1-2018.12,结题
(4)河南省自然面上项目,202300410479,2020.1-2021.12,结题
(5)广西核物理与核技术重点实验室开放课题,NLK2022-02,2023.1-2024.12,结题
(6)郑州大学优秀青年人才创新团队,2022.1-2025.12,结题
(7)郑州大学青年骨干教师培养计划,2021ZDGGJS051,2021.1-2023.12,结题
(8)郑州大学青年教师基础研究培育基金,JC202041041,2020.8-2021.8,结题
(9)郑州大学物理学科推进计划培育项目,2019.8-2022.8,结题
学生培养(含联培):
(1)在读硕士研究生:
2025级:冯佳康、梁少平
2024级:王鹏、刘旭东
2023级:孙伟、张琦
(2)已毕业硕士生:
2022级:黄紫丹
2021级:李丙新
2020级:霍恩波(赴哈尔滨工业大学读博)、靳浩淼(获国家奖学金)
2019级:孙乾坤(赴上海应用物理研究所读博)
2018级:陈晨(赴兰州大学读博)、王雅甜
2017级:钱龙、陈程
2016级:刘子鑫(获国家奖学金、赴近物所读博)
2015级:任素红(获国家奖学金)
代表性论文:(按时间倒序排列,*代表通讯作者)
1.T.-T. Sun, Y. Tanimura, H. Sagawa*, and E. Hiyama*, Charge symmetry breaking in hypernuclei within RMF model, Phys. Lett. B865, 139460 (2025).
2.Z.-D. Huang, W. Zhang, S.-Q. Zhang, T.-T. Sun*, Ground-state properties and structure evolutions of odd-A transuranium Bk isotopes by deformed relativistic Hartree-Bogoliubov theory in continuum,Phys. Rev. C 111, 034314 (2025).
3.孙亭亭,张颖*,基于格林函数方法的密度泛函理论对晕现象和共振态的描述,科学通报,第70卷 第20期:3233 (2025).
4.C.-J. Xia*, Y.-T. Rong*, and T.-T. Sun*, Light and heavyΛhyperclusters in nuclear matter with relativistic mean-field models,Phys. Rev. C 112, 064904(2025).
5.S.-Y. Ding, B.-Y. Sun*, and T.-T. Sun,Density-dependent relativistic mean-field model for hypernuclei,Phys. Rev. C 111, 014301(2025).
6.T.-T. Sun*, and Z. P. Li, Uniform descriptions of pseudospin symmetries in bound and resonant states,Phys. Lett. B854, 138721(2024).
7.T.-T. Sun*, B.-X. Li, and K. Liu, Probing spin and pseudospin symmetries in deformed nuclei by Green’s function method,Phys. Rev. C109, 014323 (2024).
8.P. Guo,et al., (DRHBc Mass Table Collaboration), Nuclear mass table in deformed relativistic Hartree-Bogoliubov theory in continuum, II: Even-Z nuclei, Atomic Data and Nuclear Data Tables 158, 101661 (2024).
9.W. Zhang, J.-K. Huang, T.-T. Sun*, J. Peng*, and S.-Q. Zhang, Inner fission barriers of uranium isotopes in the deformed relativistic Hartree-Bogoliubov theory in continuum, Chinese Physics C 48, 104105 (2024).
10.T.-T. Sun*, Z. P. Li*, and P. Ring*, Conservation and breaking of pseudospin symmetry, Phys. Lett. B 847, 138320 (2023).
11.E.-B. Huo, K.-R. Li, X. Y. Qu, Y. Zhang, and T.-T. Sun*, Continuum Skyrme Hartree Fock Bogoliubov theory with Green’s function method for neutron-rich Ca, Ni, Zr, Sn isotopes,Nucl. Sci. Tech. 34, 105 (2023).
12.H.-M. Jin, C.-J. Xia*, T.-T. Sun*, and G.-X. Peng*, Quark condensate and chiral symmetry restoration in neutron stars, Phys. Lett. B 829, 137121 (2022).
13.Y. Tanimura, H. Sagawa, T.-T. Sun, and E. Hiyama*, Ξ hypernuclei and , and theΞNtwo-body interaction, Phys. Rev. C 105, 044324 (2022).
14.C. Chen, Q.-K. Sun, Y.-X. Li, and T.-T. Sun*, Possible shape coexistence in Ne isotopes and the impurity effect of Λ hyperon, Sci. China-Phys. Mech. Astron. 64, 282011(2021).
15.T.-T. Sun*, L. Qian, C. Chen, P. Ring, and Z. P. Li*,Green's function method for the single-particle resonances in a deformed Dirac equation,Phys. Rev. C101,014321 (2020).
16.T.-T. Sun, S.-S. Zhang, Q.-L. Zhang, and C.-J. Xia*, Strangeness and Δ resonance in compact stars with relativistic-mean-field models, Phys. Rev. D 99, 023004 (2019).
17.T.-T. Sun*, Z.-X. Liu, L. Qian, B. Wang, and W. Zhang, Continuum Skyrme Hartree-Fock-Bogoliubov theory with Green’s function method for odd-A nuclei, Phys. Rev. C 99, 054316 (2019).
18.T.-T. Sun*, W.-L. Lu, L. Qian, and Y.-X. Li, Green’s function method for the spin and pseudospin symmetries in the single-particle resonant states, Phys. Rev. C 99, 034310 (2019).
19.Z.-X. Liu, C.-J. Xia, W.-L. Lu, Y.-X. Li, J. N. Hu*, and T.-T. Sun*, Relativistic mean-field approach for Λ , Ξ, and Σ hypernuclei, Phys. Rev. C 98,024316 (2018).
20.C.-J. Xia*, G.-X. Peng*, T.-T. Sun*, W.-L. Guo*, D.-H. Lu*, and P. Jaikumar*, Interface effects of strange quark matter with density dependent quark masses, Phys. Rev. D 98, 034031 (2018).
21.T.-T. Sun, C.-J. Xia*, S.-S. Zhang, and M. S. Smith, Massive neutron stars andΛ-hypernuclei in relativistic mean field models, Chin. Phys. C42, 025101 (2018).
22.T.-T. Sun*, W.-L. Lu, and S.-S. Zhang, Spin and pseudospin symmetries in the single-Λspectrum, Phys. Rev. C 96, 044312(2017).
23.S.-H. Ren, T.-T. Sun*, and W. Zhang, Green's function relativistic mean field theory forΛhypernuclei, Phys. Rev. C 95, 054318 (2017).
24.T.-T. Sun, E. Hiyama*, H. Sagawa, H.-J. Schulze, and J. Meng, Mean field approaches forΞ hypernuclei and current experimental data, Phys. Rev. C 94, 064319(2016).
25.孙亭亭*,格林函数协变密度泛函理论及其应用,中国科学:物理学 力学 天文学46,012006(2016).
26.T.-T. Sun, S. Q. Zhang, Y. Zhang, J. N. Hu, and J. Meng*, Green's function method for single-particle resonant states in relativistic mean field theory, Phys. Rev. C 90,054321(2014).
27.T.-T. Sun, B. Y. Sun, and J. Meng*, BCS-BEC crossover in nuclear matter with the relativistic Hartree-Bogoliubov theory, Phys. Rev. C 86, 014305(2012).