Wang Minghui, Chen Zihao, Song Yuqian, Hu Zunpeng, Song Hanzhe, Dong Senjie, Yuan Ding
Industrial Research Institute of Nonwovens & Technical Textiles, Shandong Engineering Research Center for Specialty Nonwoven Materials, College of Textiles & Clothing, Qingdao University, Qingdao, Shandong 266071, PR China.
Inorg Chem. 2024 Mar 4;63(9):4373-4384. doi: 10.1021/acs.inorgchem.3c04643. Epub 2024 Feb 20.
Efficient and durable bifunctional catalysts toward oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) are urgently desirable but challenging for rechargeable Zn-air batteries (ZABs), especially flexible wearable ZABs. Inspired by the vine-leaf-whisker structure in nature, we proposed a three-dimensional (3D) hierarchical bifunctional catalyst (denoted as Co-Fe-Zn@N-CNT/CNF) consisting of N-doped carbon nanotubes embedded with abundant CoFe alloy nanoparticles, leaf-shaped N-doped carbon nanoflakes, and porous carbon fibers for rechargeable ZABs. The special biomimetic structure provides a large specific surface area, allowing for high exposure of the active site and ensuring fast mass transport/charge transfer. The close combination of CoFe bimetallic alloys and N-doped carbon nanotubes delivers high electrocatalytic activity, while the coexistence of various active sites such as metal nanoparticles (NPs), metal-N, doped N species, and their synergistic interactions endows the catalysts with more active sites. As such, the Co-Fe-Zn@N-CNT/CNF catalyst achieves superior bifunctional catalytic activities for the ORR (a half-wave potential of 0.84 V) and the OER (an overpotential of 326 mV at 10 mA cm) in alkaline media, comparable to commercial Pt/C and RuO. Remarkably, both aqueous and solid-state ZABs assembled with Co-Fe-Zn@N-CNT/CNF catalysts as air electrodes demonstrate excellent charging/discharging performance, high peak power density, and robust long-term cycling stability. More interestingly, the flexible ZAB performs well even under bending conditions, displaying satisfactory device stability and mechanical flexibility. This study presents a new collective morphological-composition-structural engineering strategy for exploiting the efficient bifunctional oxygen electrocatalysts, which is of great significance for high-performance rechargeable ZABs and wearable energy storage devices.
对于可充电锌空气电池(ZAB),尤其是柔性可穿戴锌空气电池而言,迫切需要高效且耐用的双功能催化剂来催化氧还原反应(ORR)和析氧反应(OER),但这极具挑战性。受自然界中叶状须晶结构的启发,我们提出了一种三维(3D)分级双功能催化剂(记为Co-Fe-Zn@N-CNT/CNF),它由嵌入大量CoFe合金纳米颗粒的氮掺杂碳纳米管、叶状氮掺杂碳纳米薄片和多孔碳纤维组成,用于可充电锌空气电池。这种特殊的仿生结构提供了大的比表面积,使活性位点能够高度暴露,并确保快速的质量传输/电荷转移。CoFe双金属合金与氮掺杂碳纳米管的紧密结合赋予了高电催化活性,而金属纳米颗粒(NPs)、金属-N、掺杂氮物种等各种活性位点的共存及其协同相互作用赋予了催化剂更多的活性位点。因此,Co-Fe-Zn@N-CNT/CNF催化剂在碱性介质中对ORR(半波电位为0.84 V)和OER(在10 mA cm下过电位为326 mV)实现了优异的双功能催化活性,与商业Pt/C和RuO相当。值得注意的是,以Co-Fe-Zn@N-CNT/CNF催化剂作为空气电极组装的水系和固态锌空气电池均表现出优异的充放电性能、高峰值功率密度和强大的长期循环稳定性。更有趣的是,柔性锌空气电池即使在弯曲条件下也表现良好,展现出令人满意的器件稳定性和机械柔韧性。本研究提出了一种新的综合形态-组成-结构工程策略来开发高效双功能氧电催化剂,这对高性能可充电锌空气电池和可穿戴储能装置具有重要意义。