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用于可持续电子产品的混合石墨烯-钙钛矿纸质光电探测器的喷雾光刻技术。

Spray-lithography of hybrid graphene-perovskite paper-based photodetectors for sustainable electronics.

作者信息

Malik Sunaan, Zhao Yining, He Yutong, Zhao Xinyu, Li Hongyu, Yi Wentian, Occhipinti Luigi G, Wang Mingqing, Akhavan Shahab

机构信息

Institute for Materials Discovery, University College London, London, United Kingdom.

Cambridge Graphene Centre, University of Cambridge, Cambridge, United Kingdom.

出版信息

Nanotechnology. 2024 May 23;35(32). doi: 10.1088/1361-6528/ad40b6.

Abstract

Paper is an ideal substrate for the development of flexible and environmentally sustainable ubiquitous electronic systems. When combined with nanomaterial-based devices, it can be harnessed for various Internet-of-Things applications, ranging from wearable electronics to smart packaging. However, paper remains a challenging substrate for electronics due to its rough and porous nature. In addition, the absence of established fabrication methods is impeding its utilization in wearable applications. Unlike other paper-based electronics with added layers, in this study, we present a scalable spray-lithography on a commercial paper substrate. We present a non-vacuum spray-lithography of chemical vapor deposition (CVD) single-layer graphene (SLG), carbon nanotubes (CNTs) and perovskite quantum dots (QDs) on a paper substrate. This approach combines the advantages of two large-area techniques: CVD and spray-coating. The first technique allows for the growth of SLG, while the second enables the spray coating of a mask to pattern CVD SLG, electrodes (CNTs), and photoactive (QDs) layers. We harness the advantages of perovskite QDs in photodetection, leveraging their strong absorption coefficients. Integrating them with the graphene enhances the photoconductive gain mechanism, leading to high external responsivity. The presented device shows high external responsivity of ∼520 A Wat 405 nm at <1 V bias due to the photoconductive gain mechanism. The prepared paper-based photodetectors (PDs) achieve an external responsivity of 520 A Wunder 405 nm illumination at <1 V operating voltage. To the best of our knowledge, our devices have the highest external responsivity among paper-based PDs. By fabricating arrays of PDs on a paper substrate in the air, this work highlights the potential of this scalable approach for enabling ubiquitous electronics on paper.

摘要

纸张是开发柔性且环境可持续的普及型电子系统的理想基底。当与基于纳米材料的器件相结合时,它可用于各种物联网应用,从可穿戴电子设备到智能包装。然而,由于纸张表面粗糙且多孔,它仍然是电子器件领域具有挑战性的基底。此外,缺乏成熟的制造方法也阻碍了其在可穿戴应用中的使用。与其他添加了层的纸质电子产品不同,在本研究中,我们展示了一种在商用纸张基底上进行的可扩展喷雾光刻技术。我们展示了在纸张基底上对化学气相沉积(CVD)单层石墨烯(SLG)、碳纳米管(CNT)和钙钛矿量子点(QD)进行非真空喷雾光刻。这种方法结合了两种大面积技术的优点:CVD和喷涂。第一种技术允许SLG生长,而第二种技术能够喷涂掩膜以对CVD SLG、电极(CNT)和光活性(QD)层进行图案化。我们利用钙钛矿量子点在光检测方面的优势,利用其强吸收系数。将它们与石墨烯集成可增强光电导增益机制,从而实现高外部响应度。由于光电导增益机制,所展示的器件在<1 V偏压下于405 nm处显示出约520 A/W的高外部响应度。制备的纸质光电探测器(PD)在<1 V工作电压下于405 nm光照下实现了520 A/W的外部响应度。据我们所知,我们的器件在纸质PD中具有最高的外部响应度。通过在空气中的纸张基底上制造PD阵列,这项工作突出了这种可扩展方法在实现纸张上的普及型电子器件方面的潜力。

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