Abstract
Currently, there are large demands for efficient carbon capture and utilization technologies, particularly for low-concentration CO2. While photocatalytic conversion remains a promising sustainable way, its efficiency is often limited by low CO2 solubility and competitions of side reactions under diluted CO2 conditions. To improve this situation, a self-assembled biohybrid system consisting of CdSe quantum dots (QDs) and carbonic anhydrase (CdSe@CA) is designed and synthesized. The biohybrid achieves a CO2 conversion rate of 47.3 μmol g−1 h−1 in a 100% CO2 atmosphere with 100% selectivity for CO production. Remarkably, under a 50 vol% CO2 condition, the CdSe@CA maintains a similar reduction rate, while the performance of CdSe QDs alone drastically drops to 7.6 μmol g−1 h−1. Even under simulated flue gas condition (15 vol% CO2), the biohybrid can still capture and convert CO2 at a rate of 8.2 μmol g−1 h−1. Mechanistic analysis reveals that the synergistic effects between CA's ability to rapidly accumulate the reaction substrate, CO2 (aq), and rich amide groups to stabilize the reaction intermediate Cd-CO2* together contribute to the biohybrid's excellent low-concentration CO2 conversion efficiency. This study presents a promising strategy for capturing and utilizing low-concentration CO2.
Original language | English |
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Article number | e202500856 |
Journal | ChemSusChem |
Volume | 18 |
Issue number | 15 |
DOIs | |
Publication status | Published - 27 Jul 2025 |
Externally published | Yes |
Keywords
- CO fixation
- CdSe quantum dots
- biohybrids
- carbonic anhydrase
- photocatalysis