Alpha decay half-lives of heavy nuclei within a generalized liquid drop model
Zhang Hong-Fei, Wang Zu-Kai, Cheng Xi-Meng, Zuo-Wei, Junqing Li
Abstract
Zhang Hong-Fei, Wang Zu-Kai, Cheng Xi-Meng, Zuo-Wei, Junqing Li
Abstract
Theoretical α-decay half-lives of the heaviest nuclei are calculated using the experimental Q α value. The barriers in the quasi-molecular shape path is determined within a Generalized Liquid Drop Model (GLDM) and the WKB approximation is used. The results are compared with calculations using the Density-Dependent M3Y (DDM3Y) effective interaction and the Viola–Seaborg–Sobiczewski (VSS) formulae. The calculations provide consistent estimates for the half-lives of the α decay chains of these superheavy elements. The experimental data stand between the GLDM calculations and VSS ones in the most time.
OpenAlex reports 4 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
Theoretical α-decay half-lives of the heaviest nuclei are calculated using the experimental Q α value. The barriers in the quasi-molecular shape path is determined within a Generalized Liquid Drop Model (GLDM) and the WKB approximation is used. The results are compared with calculations using the Density-Dependent M3Y (DDM3Y) effective interaction and the Viola–Seaborg–Sobiczewski (VSS) formulae. The calculations provide consistent estimates for the half-lives of the α decay chains of these superheavy elements. The experimental data stand between the GLDM calculations and VSS ones in the most time.
Key concepts: WKB approximation, Physics, Semi-empirical mass formula, Alpha decay, Drop (telecommunication), Liquid drop, Decay chain, Nuclear physics