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Super Large Sn1–xSe Single Crystals with Excellent Thermoelectric Performance
Author(s) -
Min Jin,
XiaoLei Shi,
Tianli Feng,
WeiDi Liu,
Haifeng Feng,
Sokrates T. Pantelides,
Jun Jiang,
Yunxia Chen,
Yi Du,
Jin Zou,
ZhiGang Chen
Publication year - 2019
Publication title -
acs applied materials and interfaces
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.535
H-Index - 228
eISSN - 1944-8252
pISSN - 1944-8244
DOI - 10.1021/acsami.8b21699
Subject(s) - materials science , thermoelectric effect , thermal conductivity , vacancy defect , thermoelectric materials , stoichiometry , yield (engineering) , seebeck coefficient , characterization (materials science) , analytical chemistry (journal) , optoelectronics , nanotechnology , condensed matter physics , thermodynamics , composite material , chemistry , physics , chromatography
SnSe single crystals have drawn extensive attention for their ultralow thermal conductivity and outstanding thermoelectric performance. Here, we report super large Sn 1- x Se single crystals with excellent thermoelectric properties, fabricated via an advanced horizontal Bridgman technique with great yield and high reproducibility. The obtained single crystals have a super large size of ∼70 × 50 × 15 mm with a considerable weight of 148 g, which leads to a record-high mass density of >6.1 g cm -3 . Extensive chemical characterization demonstrates that ∼0.3% Sn vacancies are present, which results in a large concentration of holes, ∼1.2 × 10 19 cm -3 , and an enhanced power factor of ∼6.1 μW cm -1 K -2 at 793 K. Simultaneously, the Sn-vacancy-induced lattice distortions result in a low thermal conductivity of ∼0.39 W m -1 K -1 at 793 K, leading to a competitive ZT of ∼1.24. This work demonstrates that large-size off-stoichiometric SnSe single crystals hold promise to achieve high thermoelectric performance.

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