Yunshan Tang
Chinese Academy of Sciences
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Publication
Featured researches published by Yunshan Tang.
Energy and Environmental Science | 2016
Feng Hao; Pengfei Qiu; Yunshan Tang; Shengqiang Bai; Tong Xing; Hsu-Shen Chu; Qihao Zhang; Ping Lu; Tiansong Zhang; Dudi Ren; Jikun Chen; Xun Shi; Lidong Chen
By suppressing intrinsic excitation in p-type Bi2Te3-based materials, we report maximum and average zT values of up to 1.4 and 1.2 between 100 and 300 °C, respectively. Thermoelectric modules based on these high performance materials show energy conversion efficiencies of up to 6.0% under a temperature gradient of 217 K, and are greatly superior to current Bi2Te3-based modules.
Advanced Science | 2018
Pengfei Qiu; Yuting Qin; Qihao Zhang; Ruoxi Li; Jiong Yang; Qingfeng Song; Yunshan Tang; Shengqiang Bai; Xun Shi; Lidong Chen
Abstract Diamond‐like compounds are a promising class of thermoelectric materials, very suitable for real applications. However, almost all high‐performance diamond‐like thermoelectric materials are p‐type semiconductors. The lack of high‐performance n‐type diamond‐like thermoelectric materials greatly restricts the fabrication of diamond‐like material‐based modules and their real applications. In this work, it is revealed that n‐type AgInSe2 diamond‐like compound has intrinsically high thermoelectric performance with a figure of merit (zT) of 1.1 at 900 K, comparable to the best p‐type diamond‐like thermoelectric materials reported before. Such high zT is mainly due to the ultralow lattice thermal conductivity, which is fundamentally limited by the low‐frequency Ag‐Se “cluster vibrations,” as confirmed by ab initio lattice dynamic calculations. Doping Cd at Ag sites significantly improves the thermoelectric performance in the low and medium temperature ranges. By using such high‐performance n‐type AgInSe2‐based compounds, the diamond‐like thermoelectric module has been fabricated for the first time. An output power of 0.06 W under a temperature difference of 520 K between the two ends of the module is obtained. This work opens a new window for the applications using the diamond‐like thermoelectric materials.
Energy and Environmental Science | 2017
Qihao Zhang; Jincheng Liao; Yunshan Tang; Ming Gu; Chen Ming; Pengfei Qiu; Shengqiang Bai; Xun Shi; Ctirad Uher; Lidong Chen
Journal of Alloys and Compounds | 2012
Hongliang Dong; Xiaoya Li; Yunshan Tang; Ji Zou; Xiangyang Huang; Yanfei Zhou; Wan Jiang; Guo-Jun Zhang; Lidong Chen
Archive | 2009
Yanhong Cai; Yunshan Tang; Qihuang Deng; Jianfeng Zhang; Lianjun Wang; Guan Jiang; Lidong Chen
Nano Energy | 2017
Qihao Zhang; Zhenxing Zhou; Maxwell Dylla; Matthias T. Agne; Yanzhong Pei; Lianjun Wang; Yunshan Tang; Jincheng Liao; Juan Li; Shengqiang Bai; Wan Jiang; Lidong Chen; Gerald Jeffrey Snyder
Journal of Alloys and Compounds | 2014
Xugui Xia; Xiangyang Huang; Xiaoya Li; Ming Gu; Pengfei Qiu; Jincheng Liao; Yunshan Tang; Shengqiang Bai; Lidong Chen
Archive | 2010
Lidong Chen; Lin He; Xiaoya Li; Buyckhose Monica; Yunshan Tang; Xugui Xia; Degang Zhao
Archive | 2010
Xiaoya Li; Lidong Chen; Xugui Xia; Yunshan Tang; Shunyan Tao; Yanqing Wu; Ruiping Lu
Archive | 2009
Xugui Xia; Xiaoya Li; Lidong Chen; Yunshan Tang; Degang Zhao; Lin He