Finite-size scaling phenomenon of nuclear liquid-gas phase transition probes
Liu, HL; Ma, YG; Fang, DQ
刊名PHYSICAL REVIEW C
2019
卷号99期号:5页码:
关键词EQUATION MULTIFRAGMENTATION DYNAMICS STATE MODEL
ISSN号2469-9985
DOI10.1103/PhysRevC.99.054614
文献子类期刊论文
英文摘要Based on the isospin-dependent quantum molecular dynamics model, finite-size scaling effects on nuclear liquid-gas phase transition probes are investigated by studying the de-excitation processes of six thermal sources of different sizes with the same initial density and similar N/Z. Using several probes including the total multiplicity derivative (dM(tot)/dT), second moment parameter (M-2), intermediate mass fragment (IMF) multiplicity (N-IMF), Fisher's power-law exponent (tau), and Ma's nuclear Zipf's law exponent (xi), the relationship between the phase transition temperature and the source size has been established. It is observed that the phase transition temperatures obtained from the IMF multiplicity, Fisher's exponent, and Ma's nuclear Zipf's law exponent have a strong correlation with the source size. Moreover, by employing the finite-size scaling law, the critical temperature T-c and the critical exponent nu were obtained for infinite nuclear matter.
语种英语
内容类型期刊论文
源URL[http://ir.sinap.ac.cn/handle/331007/31635]  
专题上海应用物理研究所_中科院上海应用物理研究所2011-2017年
作者单位1.ShanghaiTech Univ, Sch Phys Sci & Technol, Shanghai 201203, Peoples R China;
2.Univ Chinese Acad Sci, Beijing 100080, Peoples R China;
3.Chinese Acad Sci, Shanghai Inst Appl Phys, Shanghai 201800, Peoples R China;
4.Fudan Univ, Key Lab Nucl Phys & Ion Beam Applicat MOE, Inst Modern Phys, Shanghai 200433, Peoples R China
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Liu, HL,Ma, YG,Fang, DQ. Finite-size scaling phenomenon of nuclear liquid-gas phase transition probes[J]. PHYSICAL REVIEW C,2019,99(5):—.
APA Liu, HL,Ma, YG,&Fang, DQ.(2019).Finite-size scaling phenomenon of nuclear liquid-gas phase transition probes.PHYSICAL REVIEW C,99(5),—.
MLA Liu, HL,et al."Finite-size scaling phenomenon of nuclear liquid-gas phase transition probes".PHYSICAL REVIEW C 99.5(2019):—.
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