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Seebeck tuning in chalcogenide nanoplate assemblies by nanoscale heterostructuring

机译:通过纳米级异质结构在硫族化物纳米板组件中进行塞贝克调谐

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摘要

Chalcogenide nanostructures offer promise for obtaining nanomaterials with high electrical conductivity, low thermal conductivity, and high Seebeck coefficient. Here, we demonstrate a new approach of tuning the Seebeck coefficient of nanoplate assemblies of single-crystal pnictogen chalcogenides by heterostructuring the nanoplates with tellurium nanocrystals. We synthesized bismuth telluride and antimony telluride nanoplates decorated with tellurium nanorods and nanofins using a rapid, scalable, microwave-stimulated organic surfactant-directed technique. Heterostructuring permits two- to three-fold factorial tuning of the Seebeck coefficient, and yields a 40% higher value than the highest reported for bulk antimony telluride. Microscopy and spectroscopy analyses of the nanostructures suggest that Seebeck tunability arises from carrier-energy filtration effects at the Te-chalcogenide heterointerfaces. Our approach of heterostructuring nanoscale building blocks is attractive for realizing high figure-of-merit thermoelectric nanomaterials.
机译:硫族化物纳米结构为获得具有高电导率,低热导率和高塞贝克系数的纳米材料提供了希望。在这里,我们演示了一种新的方法,该方法通过用碲纳米晶体对纳米板进行异质结构调整来调整单晶光致硫属元素硫属化物的纳米板组件的塞贝克系数。我们使用快速,可扩展,微波刺激的有机表面活性剂定向技术合成了装饰有碲纳米棒和纳米鳍的碲化铋和碲化锑纳米板。异质结构可实现塞贝克系数的2到3倍的因子调整,并且比散装碲化锑的最高报告值高40%。纳米结构的显微镜和光谱分析表明,塞贝克可调谐性来自于硫族硫化物异质界面上的载流子能量过滤作用。我们的异质结构纳米级构件的方法对于实现高品质因数热电纳米材料具有吸引力。

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