Zhiqiao WangRongrong XueHuiqing ZhangYichi ZhangXiaoyu TangHelin WangAhu ShaoYue Ma
The compact design of an environmentally adaptive battery and effectors forms the foundation for wearable electronics capable of time-resolved, long-term signal monitoring. Herein, we present a one-body strategy that utilizes a hydrogel as the ionic conductive medium for both flexible aqueous zinc-ion batteries and wearable strain sensors. The poly(vinyl alcohol) hydrogel network incorporates nano-SiO2 and cellulose nanofibers (referred to as PSC) in an ethylene glycol/water mixed solvent, balancing the mechanical properties (tensile strength of 6 MPa) and ionic diffusivity at -20 °C (2 orders of magnitude higher than 2 M ZnCl2 electrolyte). Meanwhile, cathode lattice breathing during the solvated Zn2+ intercalation and dendritic Zn protrusion at the anode interface are mitigated. Besides the robust cyclability of the Zn∥PSC∥V2O5 prototype within a wide temperature range (from -20 to 80 °C), this microdevice seamlessly integrates a zinc-ion battery with a strain sensor, enabling precise monitoring of the muscle response during dynamic body movement. By employing transmission-mode operando XRD, the self-powered sensor accurately documents the real-time phasic evolution of the layered cathode and synchronized strain change induced by Zn deposition, which presents a feasible solution of health monitoring by the miniaturized electronics.
Zhiqiao Wang (3987551)Rongrong Xue (4714578)Huiqing Zhang (727329)Yichi Zhang (512079)Xiaoyu Tang (422481)Helin Wang (1849780)Ahu Shao (16858442)Yue Ma (384284)
Yu LiuXiaosheng ZhangCaoer JiaLongsheng XueJinyu ZhangYang CaoXuying LiuLinlin Zhang
Yanan YangWeiwei LiWanting SuMan LangHuili LiFang Zhang
Shunjie ShiMingyang ChenXunjie HuoJuan WangQin Zhong