材料科学
共形映射
阳极
电解质
阴极
组分(热力学)
纳米技术
电池(电)
光电子学
复合材料
功率(物理)
电极
几何学
电气工程
工程类
化学
物理化学
热力学
量子力学
数学
物理
作者
Dae Up Ahn,Won‐Yeong Kim,Kwon‐Hyung Lee,Seong‐Sun Lee,Seung‐Hyeok Kim,Sodam Park,Young‐Kuk Hong,Sang Young Lee
标识
DOI:10.1002/adfm.202211597
摘要
Abstract Conventional power sources encounter difficulties in achieving structural unitization with complex‐shaped electronic devices because of their fixed form factors. Here, it is realized that an on‐demand conformal Zn‐ion battery (ZIB) on non‐developable surfaces uses direct ink writing (DIW)‐based nonplanar 3D printing. First, ZIB component (manganese oxide‐based cathode, Zn powder‐based anode, and UV‐curable gel composite electrolyte) inks are designed to regulate their colloidal interactions to fulfill the rheological requirements of nonplanar 3D printing, and establish bi‐percolating ion/electron conduction pathways, thereby enabling geometrical synchronization with non‐developable surfaces, and ensuring reliable electrochemical performance. The ZIB component inks are conformally printed on arbitrary curvilinear substrates to produce embodied ZIBs that can be seamlessly integrated with complicated 3D objects (including human ears). The conformal ZIB exhibits a high fill factor (i.e., areal coverage of cells on underlying substrates, ≈100%) that ensures high volumetric energy density (50.5 mWh cm cell −3 ), which exceeds those of previously‐reported shape‐adaptable power sources.
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