A novel pre-deposition assisted strategy for inkjet printing graphene-based flexible pressure sensor with enhanced performance

石墨烯 喷墨打印 材料科学 沉积(地质) 聚对苯二甲酸乙二醇酯 纳米技术 基质(水族馆) 柔性电子器件 图层(电子) 印刷电子产品 电容 微接触印刷 复合材料 墨水池 地质学 化学 古生物学 物理化学 沉积物 海洋学 生物 电极
作者
Jiawei Sun,Yunfei Sun,Haiyang Jia,Hengchang Bi,Lixiang Chen,Miaoling Que,Yuwei Xiong,Lu Han,Litao Sun
出处
期刊:Carbon [Elsevier]
卷期号:196: 85-91 被引量:16
标识
DOI:10.1016/j.carbon.2022.04.021
摘要

Inkjet printing of graphene-based materials represents a highly promising deposition method, as benefits of its flexibility for graphical printing and simple operation process. However, the huge challenge associated with inkjet printing of graphene-based inks is to overcome the coffee ring effect, which results in ununiformity of the printed pattern. In this paper, we innovatively demonstrate a novel and facile pre-deposition assisted strategy for inkjet printing of graphene ink. By simply pre-depositing an ethanol layer, a series of procedures including homogenization, solvent exchange, post-stretching, and air drying would take place, leading to uniform deposition of graphene nanosheets with a denser structure. The as-printed pattern was proved to have a flatter surface. Subsequently, the approach was applied to construct an interdigital capacitance pressure sensor with a polyethylene terephthalate (PET) substrate. Such sensors showed high sensitivity (the relative capacitance change reached 33 under 10000 Pa), low detection limits (clearly perceive the weight of 0.1 g), and excellent stability. Notably, it exhibited negligible thermal hysteresis and decreased performance compared with the sensor fabricated by direct printing, which stems from its compact structure and lower air content. The method we proposed opens up opportunities for practical applications of inkjet printing low-cost graphene-based electronic devices with desirable performance.
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