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A high-yield two-step transfer printing method for large-scale fabrication of organic single-crystal devices on arbitrary substrates.


ABSTRACT: Single-crystal organic nanostructures show promising applications in flexible and stretchable electronics, while their applications are impeded by the large incompatibility with the well-developed photolithography techniques. Here we report a novel two-step transfer printing (TTP) method for the construction of organic nanowires (NWs) based devices onto arbitrary substrates. Copper phthalocyanine (CuPc) NWs are first transfer-printed from the growth substrate to the desired receiver substrate by contact-printing (CP) method, and then electrode arrays are transfer-printed onto the resulting receiver substrate by etching-assisted transfer printing (ETP) method. By utilizing a thin copper (Cu) layer as sacrificial layer, microelectrodes fabricated on it via photolithography could be readily transferred to diverse conventional or non-conventional substrates that are not easily accessible before with a high transfer yield of near 100%. The ETP method also exhibits an extremely high flexibility; various electrodes such as Au, Ti, and Al etc. can be transferred, and almost all types of organic devices, such as resistors, Schottky diodes, and field-effect transistors (FETs), can be constructed on planar or complex curvilinear substrates. Significantly, these devices can function properly and exhibit closed or even superior performance than the device counterparts fabricated by conventional approach.

SUBMITTER: Deng W 

PROVIDER: S-EPMC4062903 | biostudies-other | 2014

REPOSITORIES: biostudies-other

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A high-yield two-step transfer printing method for large-scale fabrication of organic single-crystal devices on arbitrary substrates.

Deng Wei W   Zhang Xiujuan X   Pan Huanhuan H   Shang Qixun Q   Wang Jincheng J   Zhang Xiaohong X   Zhang Xiwei X   Jie Jiansheng J  

Scientific reports 20140619


Single-crystal organic nanostructures show promising applications in flexible and stretchable electronics, while their applications are impeded by the large incompatibility with the well-developed photolithography techniques. Here we report a novel two-step transfer printing (TTP) method for the construction of organic nanowires (NWs) based devices onto arbitrary substrates. Copper phthalocyanine (CuPc) NWs are first transfer-printed from the growth substrate to the desired receiver substrate by  ...[more]

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