TY - JOUR
T1 - Hierarchically structured thermoelectric materials in quaternary system cu-zn-sn-s featuring a mosaic-type nanostructure
AU - Li, Chao
AU - Shen, Yawei
AU - Huang, Rong
AU - Kumamoto, Akihito
AU - Chen, Shiyou
AU - Dai, Chenmin
AU - Yoshiya, Masato
AU - Fujii, Susumu
AU - Funai, Kohei
AU - Fisher, Craig A.J.
AU - Wang, Yifeng
AU - Qi, Ruijuan
AU - Duan, Chun Gang
AU - Pan, Lin
AU - Chu, Junhao
AU - Hirayama, Tsukasa
AU - Ikuhara, Yuichi
N1 - Publisher Copyright:
© 2018 American Chemical Society.
PY - 2018/6/22
Y1 - 2018/6/22
N2 - Multinary chalcogenide semiconductors in the Cu-Zn-Sn-S system have numerous potential applications in the fields of energy production, photocatalysis and nonlinear optics, but characterization and control of their microstructures remains a challenge because of the complexity resulting from the many mutually soluble metallic elements. Here, using state-of-the-art scanning transmission electron microscopy, energy dispersive spectroscopy, first-principles calculations and classical molecular dynamics simulations, we characterize the structures of promising thermoelectric materials Cu2(Zn,Sn)S3 at different length scales to gain a better understanding of how the various components influence the thermoelectric behavior. We report the discovery of a mosaic-type domain nanostructure in the matrix grains comprising well-defined cation-disordered domains (the "tesserae") coherently bonded to a surrounding network phase with semiordered cations. The network phase is found to have composition Cu4+xZnxSn2S7, a previously unknown phase in the Cu-Zn-Sn-S system, while the tesserae have compositions closer to that of the nominal composition. This nanostructure represents a new kind of phonon-glass electron-crystal, the cation-disordered tesserae and the abrupt domain walls damping the thermal conductivity while the cation-(semi)ordered network phase supports a high electronic conductivity. Optimization of the hierarchical architecture of these materials represents a new strategy for designing environmentally benign, low-cost thermoelectrics with high figures of merit.
AB - Multinary chalcogenide semiconductors in the Cu-Zn-Sn-S system have numerous potential applications in the fields of energy production, photocatalysis and nonlinear optics, but characterization and control of their microstructures remains a challenge because of the complexity resulting from the many mutually soluble metallic elements. Here, using state-of-the-art scanning transmission electron microscopy, energy dispersive spectroscopy, first-principles calculations and classical molecular dynamics simulations, we characterize the structures of promising thermoelectric materials Cu2(Zn,Sn)S3 at different length scales to gain a better understanding of how the various components influence the thermoelectric behavior. We report the discovery of a mosaic-type domain nanostructure in the matrix grains comprising well-defined cation-disordered domains (the "tesserae") coherently bonded to a surrounding network phase with semiordered cations. The network phase is found to have composition Cu4+xZnxSn2S7, a previously unknown phase in the Cu-Zn-Sn-S system, while the tesserae have compositions closer to that of the nominal composition. This nanostructure represents a new kind of phonon-glass electron-crystal, the cation-disordered tesserae and the abrupt domain walls damping the thermal conductivity while the cation-(semi)ordered network phase supports a high electronic conductivity. Optimization of the hierarchical architecture of these materials represents a new strategy for designing environmentally benign, low-cost thermoelectrics with high figures of merit.
KW - CuZnSnS
KW - hierarchical features
KW - mosaic-like nanodomain
KW - scanning transmission microscopy
KW - thermoelectricity
UR - http://www.scopus.com/inward/record.url?scp=85051210734&partnerID=8YFLogxK
U2 - 10.1021/acsanm.8b00278
DO - 10.1021/acsanm.8b00278
M3 - 文章
AN - SCOPUS:85051210734
SN - 2574-0970
VL - 1
SP - 2579
EP - 2588
JO - ACS Applied Nano Materials
JF - ACS Applied Nano Materials
IS - 6
ER -