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用于协同优化电输运和抑制热导率的有机锡硒混合超晶格

Organic-SnSe Hybrid Superlattice toward Synergistic Electrical Transport Optimization and Thermal Conductance Suppression.

作者信息

Liang Jia, Li Yi, Yin Shujia, Wan Chunlei

机构信息

State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.

College of Mathematics and Physics, Beijing University of Chemical Technology, Beijing 100029, China.

出版信息

ACS Appl Mater Interfaces. 2023 Jul 26;15(29):34956-34963. doi: 10.1021/acsami.3c05805. Epub 2023 Jul 11.

Abstract

Recently, layered SnSe has drawn broad research interest as a promising thermoelectric material that possesses great potential for application in energy conversion. However, extensive efforts have been devoted to optimizing the thermoelectric performance of SnSe, but the value is still far from satisfactory. Therefore, we developed an organic-inorganic superlattice hybrid by intercalating organic cations into SnSe interlayers in an attempt to enhance the thermoelectric properties. Organic intercalants can enlarge the basal spacing and decouple the SnSe layers, bringing about synergistic electrical transport modification and phonon softening. Thus, by simultaneously improving the electrical conductivity and reducing the thermal conductivity, a value of 0.34 is achieved at 342 K in tetrabutylammonium-intercalated SnSe, approximately two orders of magnitude higher than that of pristine SnSe single crystals. In addition, by opening van der Waals gaps via organic cations, outstanding flexibility of organic-intercalated SnSe is realized, with a superior figure of merit for flexibility of approximately 0.068. This work demonstrates a general and facile strategy to fabricate organic-inorganic superlattice hybrids with a considerable improvement in the thermoelectric performance via organic cation intercalation, which is promising for flexible thermoelectrics.

摘要

最近,层状硒化锡作为一种有前景的热电材料引起了广泛的研究兴趣,在能量转换方面具有巨大的应用潜力。然而,人们已付出大量努力来优化硒化锡的热电性能,但该值仍远不尽人意。因此,我们通过将有机阳离子插入硒化锡层间来开发一种有机-无机超晶格杂化物,试图增强其热电性能。有机插层剂可扩大层间距并使硒化锡层解耦,带来协同的电输运改性和声子软化。因此,通过同时提高电导率和降低热导率,在四丁基铵插层的硒化锡中于342 K时实现了0.34的值,比原始硒化锡单晶高出约两个数量级。此外,通过有机阳离子打开范德华间隙,实现了有机插层硒化锡出色的柔韧性,其柔韧性优值约为0.068。这项工作展示了一种通用且简便的策略,通过有机阳离子插层来制备热电性能有显著改善的有机-无机超晶格杂化物,这对于柔性热电学很有前景。

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