Abstract
Utilizing photo-generated carriers to boost charge–discharge process is of significance in photo-assisted lithium-oxygen batteries (PLOBs), while this poses a great challenge for low-cost multinary metal oxides (MMOs) photoelectrodes on the unfavorable conduction band that is generally lower than the reduction potential of Li2O2 to Li. The present work demonstrates a universal strategy of laser subtracting bulk MMOs, yielding gram-scale MMOs nanocrystals with a favorable band position that allows for photo-generated electrons to participate in photo-assisted reduction of oxygen. The extreme conditions manufacturing endows the MMO nanocrystals with unique surface states with abundant Lewis acid-base sites, which is experimentally verified to be favorable for acceleration of electrochemical reaction kinetics in PLOBs. Exemplified by photoelectrodes comprising laser-subtracted BiVO4 (BVO) NCs with elevated conduction band and tailored surface states, which achieve a high discharge potential of 3.25 V and low charge potential of 2.98 V (0.1 mA cm−2) with a round-trip efficiency of 109%, and excellent cycling stability over 255 cycles with only 0.027% capacity decay per cycle, surpassing previously reported metal oxide-based cathodes in PLOBs. Such a laser-subtracting strategy was further found to be general in yielding many other MMOs NCs with activated photo-assisted discharge behaviors, thus paving an efficient way to discover potential bifunctional photoelectrodes for PLOBs based on laser-matter interactions.
| Original language | English |
|---|---|
| Article number | e76771 |
| Journal | Advanced Functional Materials |
| Volume | 36 |
| Issue number | 59 |
| DOIs | |
| State | Published - 23 Jul 2026 |
Keywords
- multinary metal oxides
- photo-assisted Li-O battery
- pulsed laser irradiation in liquid
- quantum size effect
- surface state
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