Band structure engineering has a strong beneficial impact on thermoelectric performance, where theoretical methods dominate the investigation of electronic structures. Here, we use angle-resolved photoemission spectroscopy (ARPES) to analyze the electronic structure and report on the thermoelectric transport properties of half-Heusler TiCoSb high-quality single crystals. High degeneracy of the valence bands at the L and Gamma band maximum points was observed, which provides a band-convergence scenario for the thermoelectric performance of TiCoSb. Previous efforts have shown how crystallographic defects play an important role in TiCoSb transport properties, while the intrinsic properties remain elusive. Using hard X-ray photoelectron spectroscopy (HAXPES), we discard the presence of interstitial defects that could induce in-gap states near the valence band in our crystals. Contrary to polycrystalline reports, intrinsic TiCoSb exhibits p-type transport, albeit defects still affect the carrier concentration. In two initially identical p-type TiCoSb crystal batches, distinct metallic and semiconductive behaviors were found owing to defects not noticeable by elemental analysis. A varying Seebeck effective mass is consistent with the change at the Fermi level within this band convergence picture. This report tackles the direct investigation of the electronic structure of TiCoSb and reveals new insights and the strong impact of point defects on the optimization of thermoelectric properties.
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Univ Groningen, Solid State Chem Lab, Ctr Mat Sci, NL-9717 AG Groningen, NetherlandsUniv Groningen, Solid State Chem Lab, Ctr Mat Sci, NL-9717 AG Groningen, Netherlands
Jurchescu, OD
Meetsma, A
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Univ Groningen, Solid State Chem Lab, Ctr Mat Sci, NL-9717 AG Groningen, NetherlandsUniv Groningen, Solid State Chem Lab, Ctr Mat Sci, NL-9717 AG Groningen, Netherlands
Meetsma, A
Palstra, TTM
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Univ Groningen, Solid State Chem Lab, Ctr Mat Sci, NL-9717 AG Groningen, NetherlandsUniv Groningen, Solid State Chem Lab, Ctr Mat Sci, NL-9717 AG Groningen, Netherlands
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North China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R ChinaNorth China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R China
Xu, B.
Zhang, J.
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North China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R ChinaNorth China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R China
Zhang, J.
Li, X. -F.
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North China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R ChinaNorth China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R China
Li, X. -F.
Yu, G. -Q.
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Second Artillery Command Coll, Wuhan 430012, Peoples R ChinaNorth China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R China
Yu, G. -Q.
Ma, S. -S.
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North China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R ChinaNorth China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R China
Ma, S. -S.
Wang, Y. -S.
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North China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R ChinaNorth China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R China
Wang, Y. -S.
Yi, L.
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Huazhong Univ Sci & Technol, Dept Phys, Wuhan 430074, Peoples R ChinaNorth China Univ Water Resource & Elect Power, Dept Math & Informat Sci, Zhengzhou 450011, Peoples R China