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首页> 外文期刊>Nano letters >Multifunctional Two-Dimensional PtSe2-Layer Kirigami Conductors with 2000% Stretchability and Metallic-to-Semiconducting Tunability
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Multifunctional Two-Dimensional PtSe2-Layer Kirigami Conductors with 2000% Stretchability and Metallic-to-Semiconducting Tunability

机译:多功能二维PTSe2层Kirigami导体,具有2000%的可拉伸性和金属至半导体可调性

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Two-dimensional transition-metal dichalcogenide (2D TMD) layers are highly attractive for emerging stretchable and foldable electronics owing to their extremely small thickness coupled with extraordinary electrical and optical properties. Although intrinsically large strain limits are projected in them (i.e., several times greater than silicon), integrating 2D TMDs in their pristine forms does not realize superior mechanical tolerance greatly demanded in high-end stretchable and foldable devices of unconventional form factors. In this article, we report a versatile and rational strategy to convert 2D TMDs of limited mechanical tolerance to tailored 3D structures with extremely large mechanical stretchability accompanying well-preserved electrical integrity and modulated transport properties. We employed a concept of strain engineering inspired by an ancient paper-cutting art, known as kirigami patterning, and developed 2D TMD-based kirigami electrical conductors. Specifically, we directly integrated 2D platinum diselenide (2D PtSe2) layers of controlled carrier transport characteristics on mechanically flexible polyimide (PI) substrates by taking advantage of their low synthesis temperature. The metallic 2D PtSe2/PI kirigami patterns of optimized dimensions exhibit an extremely large stretchability of 2000% without compromising their intrinsic electrical conductance. They also present strain-tunable and reversible photoresponsiveness when interfaced with semiconducting carbon nanotubes (CNTs), benefiting from the formation of 2D PtSe2/CNT Schottky junctions. Moreover, kirigami field-effect transistors (FETs) employing semiconducting 2D PtSe2 layers exhibit tunable gate responses coupled with mechanical stretching upon electrolyte gating. The exclusive role of the kirigami pattern parameters in the resulting mechanoelectrical responses was also verified by a finite-element modeling (FEM) simulation. These multifunctional 2D materials in unconventional yet tailored 3D forms are believed to offer vast opportunities for emerging electronics and optoelectronics.
机译:由于其具有非常小的厚度与非电气和光学性能相结合,其二维过渡金属二均甲基(2D TMD)层对出现可伸展的可伸缩和可折叠电子产品具有高度吸引力。尽管本质上大的应变限制被投射在它们中(即,几次大于硅),但在其原始形式中积分2D TMD不会实现在非常规形状因子的高端可伸缩和可折叠设备中大大要求的优越机械耐受性。在本文中,我们报告了一种多功能和合理的策略,将2D TMDS的有限机械耐受性转换为定制的3D结构,具有极大的机械拉伸性,伴随着保存的电气完整性和调制的运输性能。我们雇用了由古老的纸切割艺术的应变工程的概念,称为Kirigami Patterning,并开发了基于TMD的Kirigami电导体。具体地,通过利用它们的低合成温度,我们直接在机械柔性聚酰亚胺(PI)基板上对受控载体传输特性的2D铂二烯烃(2D Ptse2)层。优化尺寸的金属2D Ptse2 / Pi Kirigami模式具有极大的拉伸性,2000%的可拉伸性,而不会影响其固有电导率。当用半导体碳纳米管(CNT)接合时,它们还存在应变可调和可逆的光反应性,从而受益于2D Ptse2 / CNT肖特基结的形成。此外,采用半导体2D Ptse2层的Kirigami场效应晶体管(FET)具有在电解质门控时与机械拉伸耦合的可调栅极响应。通过有限元建模(FEM)模拟还验证了Kirigami模式参数在所得到的机械响应中的独特作用。这些多功能2D材料在非传统且量身定制的3D形式中,据信为新兴电子和光电子提供了巨大的机会。

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