Journal of Inorganic Materials, Volume. 34, Issue 3, 301(2019)
Different Doping Sites of Ag on Cu2SnSe3 and Their Thermoelectric Property
[1] KANATZIDIS M G, TAN G, ZHAO LD. Rationally designing high-performance bulk thermoelectric materials[D]. Chemical Reviews, 116, 12123-12149(2016).
[2] COHN J L, FESSATIDIS V, NOLAS G S et al. Glass-like heat conduction in high-mobility crystalline semiconductors[D]. Physical Review Letters, 82, 779-782(1999).
[3] LALONDE A, PEI Y, SHI X et al. Convergence of electronic bands for high performance bulk thermoelectrics[D]. Nature, 473, 66-69(2011).
[4] LIU Z, SUN Z, ZHAO W et al. Superparamagnetic enhancement of thermoelectric performance[D]. Nature, 549, 247-251(2017).
[5] HAO S Q, SHI F Y, TAN G J et al. Valence band modification and high thermoelectric performance in SnTe heavily alloyed with MnTe[D]. Journal of the American Chemical Society, 137, 11507-11516(2015).
[6] BISWAS K, BLUM I D, HE J et al. High-performance bulk thermoelectrics with all-scale hierarchical architectures[D]. Nature, 489, 414-418(2012).
[7] LI W, WU H J, XIAO Y et al. Remarkable roles of Cu to synergistically optimize phonon and carrier transport in n-type PbTe-Cu2Te[D]. Journal of the American Chemical Society, 139, 18732-18738(2017).
[8] SUN F H, WEI T R, WU C F et al. Nanoporous PbSe-SiO2 thermoelectric composites[D]. Advanced Science, 4, 1700199-1-7(2017).
[9] LI H, SU X, WEI P et al. Multi-scale microstructural thermoelectric materials: transport behavior, non-equilibrium preparation,applications[D]. Advanced Materials, 29, 1602013-1-13(2017).
[10] HE J, LO SH, ZHAO LD et al. High performance thermoelectrics from earth-abundant materials: enhanced figure of merit in PbS by second phase nanostructures[D]. Journal of the American Chemical Society, 133, 20476-20487(2011).
[11] LO SH, ZHANG Y, ZHAO LD et al. Ultralow thermal conductivity and high thermoelectric figure of merit in SnSe crystals[D]. Nature, 508, 373-377(2014).
[12] HAO S Q, TAN G J, ZHAO L D et al. Ultrahigh power factor and thermoelectric performance in hole-doped single-crystal SnSe[D]. Science, 351, 141-144(2016).
[13] CHANG C, HE D S, WU M H et al. 3D charge and 2D phonon transports leading to high out-of-plane ZT in n-type SnSe crystals[D]. Science, 360, 778-782(2018).
[14] FAN J, SHI X, XI L et al. Cu-Se bond network and thermoelectric compounds with complex diamondlike structure[D]. Chemistry of Materials, 22, 6029-6031(2010).
[15] AKSELRUD L, CARRILLO-CABRERA W, FAN J et al. New monoclinic phase at the composition Cu2SnSe3 and its thermoelectric properties[D]. Inorganic Chemistry, 52, 11067-11074(2013).
[16] PRASAD K S, RAO A, TYAGI K et al. Enhanced thermoelectric performance of Pb doped Cu2SnSe3 synthesized employing spark plasma sintering. Physica B[D]. -Condensed Matter, 512, 39-44(2017).
[17] LI J, LI Y, LIU G et al. High thermoelectric performance of In-doped Cu2SnSe3 prepared by fast combustion synthesis[D]. New Journal of Chemistry, 40, 5394-5400(2016).
[18] LU X, MORELLI D T. Thermoelectric properties of Mn-doped Cu2SnSe3[D]. Journal of Electronic Materials, 41, 1554-1558(2012).
[19] CAO T, LI Y, LIU G et al. Enhanced thermoelectric properties of Cu2SnSe3 by (Ag,In)-Co-doping[D]. Advanced Functional Materials, 26, 6025-6032(2016).
[20] DELGADO G, MARCANO G, MORA A et al. Crystal structure refinement of the semiconducting compound Cu2SnSe3 from X-ray powder diffraction data[D]. Materials Research Bulletin, 38, 1949-1955(2003).
[21] ANTONYSHYN I, FAN J, SCHNELLE W et al. Structural evolvement and thermoelectric properties of Cu3-xSnxSe3 compounds with diamond-like crystal structures[D]. Dalton Transactions, 43, 16788-16794(2014).
[22] LU X, PENG K, ZHAN H et al. Broad temperature plateau for high ZTS in heavily doped p-type SnSe single crystals[D]. Energy & Environmental Science, 9, 454-460(2016).
[23] NAN CW. Physics of inhomogeneous inorganic materials[D]. Progress in Materials Science, 37, 1-116(1993).
[24] KATZ H E, SUN J, ZHANG B et al. Promising thermoelectric properties of commercial PEDOT:PSS materials and their Bi2Te3 powder composites[D]. ACS Applied Materials & Interfaces, 2, 3170-3178(2010).
[25] PEI Y L, WU H J, ZHOU Y M et al. Strategy to optimize the overall thermoelectric properties of SnTe via compositing with its property-counter CuInTe2[D]. Acta Materialia, 125, 542-549(2017).
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Yi-Ming ZHOU, Yu-Ling ZHOU, Qian-Tao PANG, Jian-Wei SHAO, Li-Dong ZHAO, [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. Different Doping Sites of Ag on Cu2SnSe3 and Their Thermoelectric Property[J]. Journal of Inorganic Materials, 2019, 34(3): 301
Category: Research Articles
Received: Jul. 2, 2018
Accepted: --
Published Online: Sep. 26, 2021
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