何强

个人信息

Personal information

副教授     硕士生导师

性别:男

在职信息:在职

所在单位:集成电路学院

学历:研究生(博士)毕业

学位:工学博士学位

毕业院校:华中科技大学

学科:微电子学与固体电子学
曾获荣誉:
2023    校优秀班主任
2022    "火花奖"
2019    华为公司总裁个人
2020    华为公司金牌团队奖
2020    华为武汉研究所-优秀班排长
2014    硕士国家奖学金
2020    华为武汉研究所年度所长奖-优秀技术合作奖

Positive dependence of thermal conductivity on temperature in GeTe/Bi 2 Te 3 superlattices: the contribution of electronic and particle wave lattice thermal conductivity
发布时间:2022-03-11  点击次数:

论文类型:期刊论文
第一作者:Hao Tong
合写作者:Xiangshui Miao,K Z Wang,Qiang He,Xiaojie Wang,L J Zhou,Y J Liu,Feng Lan
发表刊物:Journal of Physics D Applied Physics
收录刊物:SCI
学科门类:工学
一级学科:电子科学与技术
文献类型:J
DOI码:10.1088/1361-6463/aa7c94
发表时间:2017-09-17
摘要:Temperature-dependent thermal conductivity of phase-change material, GeTe/Bi2Te3 superlattices, has been investigated in the temperature range of 40–300 K. We have found that thermal conductivity increases with increasing temperature, which is contrary to the common results indicated by other works. In this paper, two possible mechanisms are suggested for this result. One is that the thermal conductivity is affected by the thermal boundary resistance at the interfaces between layers, and the other considers the factor of electronic thermal conductivity in the partially coherent regime which is based on the very wave-particle duality of phonons. Finally, the periodic thickness dependence of the thermal conductivity in GeTe/Bi2Te3 superlattices have been measured at room temperature, and the results indicate the main contribution of electron in the total thermal conductivity and the partially coherent regime of phonon. Thus we believe that the second explanation is more reasonable. The work here deepens the understanding of basic mechanisms of thermal transport in phase-change superlattices, and is instructive in modeling and simulation of phase change memories.