Wang Junyan, Guo Wanchun, Tian Kesong, Li Xinta, Wang Xinyu, Li Panhua, Zhang Yu, Zhang Bosen, Zhang Biao, Liu Shuhu, Li Xueai, Xu Zhaopeng, Xu Junjie, Wang Haiyan, Hou Yanglong
State Key Laboratory of Metastable Materials Science and Technology, Hebei Key Laboratory of Heavy Metal Deep-Remediation in Water and Resource Reuse, School of Environmental and Chemical Engineering, Yanshan University, Qinhuangdao, 066004, People's Republic of China.
Beijing Key Laboratory for Magnetoelectric Materials and Devices, Beijing Innovation Centre for Engineering Science and Advanced Technology, School of Materials Science and Engineering, Peking University, Beijing, 100871, People's Republic of China.
Nanomicro Lett. 2023 Dec 20;16(1):62. doi: 10.1007/s40820-023-01283-3.
An air-breathing chemical self-charge concept of oxygen-enriched carbon cathode. The oxygen-enriched carbon material with abundant catechol groups. Rapid air-oxidation chemical self-charge of catechol groups. The self-charging concept has drawn considerable attention due to its excellent ability to achieve environmental energy harvesting, conversion and storage without an external power supply. However, most self-charging designs assembled by multiple energy harvesting, conversion and storage materials increase the energy transfer loss; the environmental energy supply is generally limited by climate and meteorological conditions, hindering the potential application of these self-powered devices to be available at all times. Based on aerobic autoxidation of catechol, which is similar to the electrochemical oxidation of the catechol groups on the carbon materials under an electrical charge, we proposed an air-breathing chemical self-charge concept based on the aerobic autoxidation of catechol groups on oxygen-enriched carbon materials to ortho-quinone groups. Energy harvesting, conversion and storage functions could be integrated on a single carbon material to avoid the energy transfer loss among the different materials. Moreover, the assembled Cu/oxygen-enriched carbon battery confirmed the feasibility of the air-oxidation self-charging/electrical discharging mechanism for potential applications. This air-breathing chemical self-charge concept could facilitate the exploration of high-efficiency sustainable air self-charging devices.
富氧碳阴极的空气呼吸化学自充电概念。具有丰富儿茶酚基团的富氧碳材料。儿茶酚基团的快速空气氧化化学自充电。这种自充电概念因其在无需外部电源的情况下实现环境能量收集、转换和存储的卓越能力而备受关注。然而,大多数由多种能量收集、转换和存储材料组装而成的自充电设计会增加能量转移损失;环境能量供应通常受气候和气象条件限制,阻碍了这些自供电设备随时可用的潜在应用。基于儿茶酚的需氧自氧化,这类似于碳材料上儿茶酚基团在充电时的电化学氧化,我们提出了一种基于富氧碳材料上儿茶酚基团需氧自氧化为邻醌基团的空气呼吸化学自充电概念。能量收集、转换和存储功能可集成在单一碳材料上,以避免不同材料之间的能量转移损失。此外,组装的铜/富氧碳电池证实了空气氧化自充电/放电机制在潜在应用中的可行性。这种空气呼吸化学自充电概念有助于探索高效可持续的空气自充电设备。