Laser-Printed In-Plane Micro-Supercapacitors: From Symmetric to Asymmetric Structure

材料科学 超级电容器 激光器 平面(几何) 纳米技术 光电子学 光学 电容 电极 几何学 化学 数学 物理化学 物理
作者
Gui‐Wen Huang,Na Li,Yi Du,Qing‐Ping Feng,Hong‐Mei Xiao,Xinghua Wu,Shao‐Yun Fu
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:10 (1): 723-732 被引量:47
标识
DOI:10.1021/acsami.7b15922
摘要

Here, we propose and demonstrate a complete solution for efficiently fabricating in-plane micro-supercapacitors (MSCs) from a symmetric to asymmetric structure. By using an original laser printing process, symmetric MSC with reduced graphene oxide (rGO)/silver nanowire (Ag-NW) hybrid electrodes was facilely fabricated and a high areal capacitance of 5.5 mF cm-2 was achieved, which reaches the best reports on graphene-based MSCs. More importantly, a "print-and-fold" method has been creatively proposed that enabled the rapid manufacturing of asymmetric in-plane MSCs beyond the traditional cumbersome technologies. α-Ni(OH)2 particles with high tapping density were successfully synthesized and employed as the pseudocapacitive material. Consequently, an improved supply voltage of 1.5 V was obtained and an areal capacitance as high as 8.6 mF cm-2 has been realized. Moreover, a demonstration of a miniaturized MSC pack was performed by multiply-folding the serial Ag-NW-connected MSC units. As a result, a compact MSC pack with a high supply voltage of 3 V was obtained, which can be utilized to power a light-emitting diode light. These presented technologies may pave the way for the efficiently producing high performance in-plane MSCs, meanwhile offering a solution for the achievement of practical power supply packs integrated in limited spaces.

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