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INORGANIC/ORGANIC HYBRID SUPERLATTICE FILMS TOWARD NEXT-GENERATION FLEXIBLE/WEARABLE THERMOELECTRIC DEVICES

机译:无机/有机混合超晶格薄膜走向下一代柔性/可磨损热电设备

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Liquid exfoliation has proven to be a scalable and versatile technique to produce large-scale two-dimensional (2D) nanosheets among graphene, boron nitrides, layered perovskites and transition metal dichalcogenides. This also provides new insights into the assembly of multilayer heterostructures for novel functionalities. Here we present a solution-processed method to fabricate 2D inorganic/organic superlattice film for thermal energy harvesting, which can be either freestanding or be deposited onto substrates. The organic layer provides charge carriers to the inorganic layer, suppresses the overall thermal conductivity, and allows the material to be flexible. We have fabricated a thermoelectric module, which can generate a high power density of 2.5 W/m~2 at a temperature gradient of 70K, hitting new record among the organic-based flexible thermoelectric devices. Flexibility of our newly developed superlattice materials combined with organic TE materials would enable us to design various types of TE modules that cannot be realized by using conventional hard and stiff inorganic materials. Our newly designed TE modules will be demonstrated to be useful for energy harvesting in the future IoT society.
机译:事实证明,液体剥落是一种可扩展的通用技术,可以在石墨烯,氮化硼,层状钙钛矿和过渡金属二卤化碳之间生成大规模的二维(2D)纳米片。这也为多层异质结构的组装提供了新的见解,以实现新颖的功能。在这里,我们提出一种溶液处理的方法来制造用于热能收集的2D无机/有机超晶格薄膜,该薄膜既可以独立放置也可以沉积在基板上。有机层向无机层提供电荷载流子,抑制总的热导率,并使材料具有柔性。我们制造了一种热电模块,该模块可在70K的温度梯度下产生2.5 W / m〜2的高功率密度,创下了有机柔性热电器件的新记录。我们新开发的超晶格材料与有机TE材料相结合的灵活性将使我们能够设计出各种类型的TE模块,而这些模块无法使用常规的硬质和硬质无机材料来实现。我们新设计的TE模块将被证明对未来的物联网社会的能量收集非常有用。

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