Gwang Hyeon KimHyeon Jun ParkBitna BaeHaksu JangCheol Min KimDonghun LeeKwi‐Il Park
Composite-based piezoelectric devices are extensively studied to develop sustainable power supply and selfpowered devices owing to their excellent mechanical durability and output performance. In this study, we design a leadfree piezoelectric nanocomposite utilizing (Ba<sub>0.85</sub>Ca<sub>0.15</sub>)(Ti<sub>0.9</sub>Zr<sub>0.1</sub>)O<sub>3</sub> (BCTZ) nanomaterials for realizing highly flexible energy harvesters. To improve the output performance of the devices, we incorporate porous BCTZ nanowires (NWs) into the nanoparticle (NP)-based piezoelectric nanocomposite. BCTZ NPs and NWs are synthesized through the solidstate reaction and sol-gel-based electrospinning, respectively; subsequently, they are dispersed inside a polyimide matrix. The output performance of the energy harvesters is measured using an optimized measurement system during repetitive mechanical deformation by varying the composition of the NPs and NWs. A nanocomposite-based energy harvester with 4:1 weight ratio generates the maximum open-circuit voltage and short-circuit current of 0.83 V and 0.28 A, respectively. In this study, self-powered devices are constructed with enhanced output performance by using piezoelectric energy harvesting for application in flexible and wearable devices.
Changyeon BaekJong Hyuk YunJi Eun WangChang Kyu JeongKeon Jae LeeKwi‐Il ParkDo Kyung Kim
Dalel MissaouiAyda BouhamedKhawla JederAmina Ben AyedAnouar NjehOlfa Kanoun
Zhe XüCongran JinAndrew CabeDanny EscobedoNanjing HaoIan TraseAndrew B. ClossonLin DongYuan NieJames ElliottMarc D. FeldmanZi ChenJohn X. J. Zhang
Changyeon BaekHyeonbin ParkJong Hyuk YunDo Kyung KimKwi‐Il Park
Mengjie XiaCuixian LuoXiaoxiao SuYinhui LiPengwei LiJie HuGang LiHuabei JiangWendong Zhang