Wei Ning, Li Yan, Tang Yuxi, Zhou Yanhong, Ning Renjie, Tang Menglin, Lu Shibin, Zeng Wei, Xiong Yi
Anhui Province Key Laboratory of Simulation and Design for Electronic Information System, Hefei Normal University, Hefei 230601, Anhui, People's Republic of China.
Industry-Education-Research Institute of Advanced Materials and Technology for Integrated Circuits, School of Electronics and Information Engineering, Anhui University, Hefei 230601, Anhui, People's Republic of China.
J Colloid Interface Sci. 2022 Nov 15;626:23-34. doi: 10.1016/j.jcis.2022.06.121. Epub 2022 Jun 25.
A facile resilient bismuthine-anchored graphene architecture is reported as multifunctional all-solid-state flexible supercapacitors and ionic-type capacitive sensor. Meanwhile, an electrons/ions dual transport channels design is achieved by inserting elaborately conductive bismuthene flakes into hierarchical porous aerogel framework. This strategy concurrently realizes the expansion of interlayer space for favoring electrolyte infiltration, and boost of interlayer conductivity to ensure interlayer electrons transport, endowing the device with attractive electrochemical energy storage and pressure sensing performance. As a result, the fabricated flexible symmetric supercapacitor device using bismuthene-graphene architecture as both negative and positive electrode delivers an excellent energy density of 45.55 Wh/kg at 400 W/kg along with cycling stability of 89.24% even after 3600 charge/discharge cycles. The bismuthene-graphene aerogel-based capacitive sensor with the hierarchical porous architecture demonstrates a high sensitivity of 0.326 kPa. Furthermore, the sensing mechanisms of ionic-type pressure sensor is explored. This work clearly demonstrates that the novel 3D hierarchical bismuthene-graphene architecture can be widely used in multifunctional devices of supercapacitors and tactile sensors.
据报道,一种简便的弹性铋烯锚定石墨烯结构可作为多功能全固态柔性超级电容器和离子型电容传感器。同时,通过将精心制备的导电铋烯薄片插入分层多孔气凝胶框架中,实现了电子/离子双传输通道设计。该策略同时实现了层间空间的扩展以利于电解质渗透,并提高了层间电导率以确保层间电子传输,赋予该器件具有吸引力的电化学储能和压力传感性能。结果,使用铋烯-石墨烯结构作为负极和正极制造的柔性对称超级电容器器件在400 W/kg时具有45.55 Wh/kg的优异能量密度,即使在3600次充放电循环后仍具有89.24%的循环稳定性。具有分层多孔结构的基于铋烯-石墨烯气凝胶的电容传感器表现出0.326 kPa的高灵敏度。此外,还探索了离子型压力传感器的传感机制。这项工作清楚地表明,新型3D分层铋烯-石墨烯结构可广泛应用于超级电容器和触觉传感器等多功能器件中。