| Literature DB >> 34797581 |
Jiaxin Li1, Kun Zhang1, Yang Zhao2, Chuang Wang1, Lipeng Wang1, Lie Wang3, Meng Liao1, Lei Ye1, Ye Zhang3, Yue Gao1, Bingjie Wang1, Huisheng Peng1.
Abstract
Li-CO2 batteries are explored as promising power systems to alleviate environmental issues and to implement space applications. However, sluggish cathode kinetics of CO2 reduction/evolution result in low round-trip efficiency and poor cycling stability of the fabricated energy-storage devices. Herein, we design a heterostructued photocathode comprising carbon nanotube and carbon nitride to accelerate cathode reactions of a Li-CO2 battery under illumination. Benefiting from the unique defective structure of carbon nitride and favorable interfacial charge transfer, the photocathode effectively harvests ultraviolet-visible light to generate abundant photoexcited carriers and coordinates energetic photoelectrons/holes to participate in the discharge/charge reactions, leading to efficient photo-energy utilization in decreasing reaction barriers and enhancing thermodynamic reversibility of Li-CO2 battery. The resulting battery delivers a high round-trip efficiency of 98.8 % (ultralow voltage hysteresis of 0.04 V) and superior cycling stability (86.1 % efficiency retention after 100 cycles).Entities:
Keywords: Carbon nanotube; Carbon nitride; Cycling stability; Li−CO2 battery; Round-trip efficiency
Year: 2021 PMID: 34797581 DOI: 10.1002/anie.202114612
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336