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用于可持续碳基电子学的离子掺入型可降解纳米纤维素晶体基板

Ion-Incorporative, Degradable Nanocellulose Crystal Substrate for Sustainable Carbon-Based Electronics.

作者信息

Thi Quyen Vu, Ko Jaehyoung, Jo Yerin, Joo Yongho

机构信息

Institute of Advanced Composite Materials, Korea Institute of Science and Technology (KIST), Wanju-gun 55324, Jeonbuk, Republic of Korea.

Department of Chemical and Biomolecular Engineering and KAIST Institute for Nano Century, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2022 Sep 28;14(38):43538-43546. doi: 10.1021/acsami.2c10437. Epub 2022 Sep 13.

Abstract

Electronic wastes from transient electronics accumulate biologically harmful materials with global concern. Recycling these wastes could prevent the deposition of hazardous chemicals and toxic materials to the environment while saving scarce natural compounds and valuable resources. Here, we report a sustainable electronic device, taking advantage of carbon resources and a biodegradable cellulose composite. The device consists of an ambient-stable carbon nanotube as a semiconductor, graphene as electrodes, and a free-standing cellulose filter paper/nanocellulose composite as a dielectric layer. The dual-functional cellulose composite acting simultaneously as a robust substrate and a dielectric is demonstrated, which is compatible with solution device fabrication processes. An optimized channel dimension of 5 mm × 3 mm with the addition of ions that facilitates a charge transport realized a device with an on-current per width of 9.6 μA mm, an on/off ratio >10, a field-effect mobility of 2.03 cm V s, and long-term stability over 30 days under ambient conditions. Successful separation of the carbonaceous components an eco-friendly solution sorting protocol allowed the recycled device to display excellent electronic performance, with a recapture efficiency of 90%. This effort demonstrates a processable, low-cost, and sustainable electronic system that can be applied in the current realm of the semiconducting and sensing industry.

摘要

瞬态电子产品产生的电子废物积累了具有全球影响的生物有害物质。回收这些废物可以防止有害化学物质和有毒材料沉积到环境中,同时节省稀缺的天然化合物和宝贵资源。在此,我们报告一种可持续的电子设备,它利用碳资源和可生物降解的纤维素复合材料制成。该设备由作为半导体的环境稳定碳纳米管、作为电极的石墨烯以及作为介电层的独立式纤维素滤纸/纳米纤维素复合材料组成。展示了一种同时作为坚固基板和电介质的双功能纤维素复合材料,它与溶液器件制造工艺兼容。通过添加促进电荷传输的离子,优化后的通道尺寸为5毫米×3毫米,实现了一种每宽度导通电流为9.6微安/毫米、开/关比>10、场效应迁移率为2.03厘米²/伏·秒且在环境条件下30天以上具有长期稳定性的器件。通过一种环保的溶液分选方案成功分离含碳成分,使回收后的器件展现出优异的电子性能,回收效率达90%。这项工作展示了一种可加工、低成本且可持续的电子系统,可应用于当前的半导体和传感行业领域。

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