TY - JOUR
T1 - Enhancement of Thermoelectric Performance of Layered SnSe2 by Synergistic Modulation of Carrier Concentration and Suppression of Lattice Thermal Conductivity
AU - Wu, Shaohai
AU - Yang, Hengquan
AU - Wu, Zhengsen
AU - Liu, Chengyan
AU - Miao, Lei
AU - Gao, Jie
AU - Wang, Xiaoyang
AU - Wang, Xiuxia
AU - Shen, Chengjin
AU - Noudem, Jacques G.
AU - Wang, Jun
N1 - Funding Information:
This work was supported by the National Natural Science Foundation of China (Grant No. 51562005, 51772056 and 51801040), the National Key Research and Development Program of China (No. 2017YFE9128000) and the Natural Science Foundation of Guangxi Province of China (Grant No. 2016GXNSFBA380152 and 2015GXNSFFA139002).
PY - 2019/12/23
Y1 - 2019/12/23
N2 - Eco-friendly and low-cost layered SnSe2-based materials have been attracting great attention in the thermoelectric field for their intrinsically low thermal conductivity. In this work, we applied AgCl as Cl-dopant and formed Ag-rich precipitates in SnSe2 polycrystals, and their thermoelectric properties were investigated. The results demonstrate that Cl was artificially incorporated into SnSe2 by the substitution of Se atoms, playing as donor centers and thus increasing the carrier concentration by 2 orders of magnitude, leading to a tremendous improvement of the electrical conductivity and power factor. However, Ag atoms hardly enter into the Sn lattice sites and brought about the generation of Ag-rich precipitates. The complicated microstructures with multiple types of defects, such as point defects, boundaries, dislocations, and so on, result in a relatively low lattice thermal conductivity in the AgCl-introduced SnSe2 samples. Additionally, the anisotropic electrical and thermal transport properties were investigated, and the results show that higher ZT values were obtained along the pressing direction in these textured samples because of the significantly suppressed lattice thermal conductivity caused by the enhanced phonon scattering via the interior van der Waals layers. Ultimately, a maximum ZT value of 0.35 was realized at 400 °C in the polycrystalline SnSe2 with introduction of 11 mol % AgCl, which is nearly 3 times higher than that value of the pristine counterpart. It demonstrates that the combined effects of Cl-doping, Ag-rich precipitates, and texturing could effectively enhance the ZT value for polycrystalline SnSe2
AB - Eco-friendly and low-cost layered SnSe2-based materials have been attracting great attention in the thermoelectric field for their intrinsically low thermal conductivity. In this work, we applied AgCl as Cl-dopant and formed Ag-rich precipitates in SnSe2 polycrystals, and their thermoelectric properties were investigated. The results demonstrate that Cl was artificially incorporated into SnSe2 by the substitution of Se atoms, playing as donor centers and thus increasing the carrier concentration by 2 orders of magnitude, leading to a tremendous improvement of the electrical conductivity and power factor. However, Ag atoms hardly enter into the Sn lattice sites and brought about the generation of Ag-rich precipitates. The complicated microstructures with multiple types of defects, such as point defects, boundaries, dislocations, and so on, result in a relatively low lattice thermal conductivity in the AgCl-introduced SnSe2 samples. Additionally, the anisotropic electrical and thermal transport properties were investigated, and the results show that higher ZT values were obtained along the pressing direction in these textured samples because of the significantly suppressed lattice thermal conductivity caused by the enhanced phonon scattering via the interior van der Waals layers. Ultimately, a maximum ZT value of 0.35 was realized at 400 °C in the polycrystalline SnSe2 with introduction of 11 mol % AgCl, which is nearly 3 times higher than that value of the pristine counterpart. It demonstrates that the combined effects of Cl-doping, Ag-rich precipitates, and texturing could effectively enhance the ZT value for polycrystalline SnSe2
KW - Ag-rich precipitates
KW - Cl doping
KW - anisotropic
KW - layered SnSe
KW - spark plasma texturing
KW - thermoelectric materials
UR - http://www.scopus.com/inward/record.url?scp=85075598388&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85075598388&partnerID=8YFLogxK
U2 - 10.1021/acsaem.9b01399
DO - 10.1021/acsaem.9b01399
M3 - Article
AN - SCOPUS:85075598388
SN - 2574-0962
VL - 2
SP - 8481
EP - 8490
JO - ACS Applied Energy Materials
JF - ACS Applied Energy Materials
IS - 12
ER -