Unveiling the Potential of Halide Perovskites for Seasonally Adaptive CO2 Photoreduction under Low Light Conditions

Author:

Tailor Naveen Kumar12,Singh Shreya3,Saini Saurabh K.45,Kaivalya 6,Afroz Mohammad Adil12,Kumar Mahesh7,Peter Sebastian C.8,Pant Kamal Kishore23910,Satapathi Soumitra12ORCID

Affiliation:

1. Department of Physics Indian Institute of Technology Roorkee Roorkee 247667 India

2. Center for Sustainable Energy Indian Institute of Technology Roorkee Roorkee 247667 India

3. Catalytic Reaction Engineering Lab Department of Chemical Engineering Indian Institute of Technology Delhi New Delhi 110016 India

4. CSIR‐National Physical Laboratory Dr. K.S. Krishnan Marg New Delhi 110012 India

5. Academy of Scientific and Innovative Research (AcSIR) Ghaziabad 201002 India

6. Department of Electrical Engineering Indian Institute of Technology Roorkee Roorkee 247667 India

7. Innovation Management Directorate Anusandhan Bhawan New Delhi 110001 India

8. New Chemistry Unit and School of Advanced Materials Jawaharlal Nehru Centre for Advanced Scientific Research Jakkur Bangalore 560064 India

9. Department of Chemical Engineering Indian Institute of Technology Roorkee Roorkee 247667 India

10. University of Saskatchewan Saskatoon SK S7N 5A2 Canada

Abstract

AbstractThe viability of double perovskite Cs2AgBiBr6 in low‐light environments is studied for CO2 photoreduction. It is observed that light intensity significantly influences product formation with I0.56 depending on the overall product formation rate. The photodetection measurement reveals that photocurrent as a function of incident power follows a power law ∝ I0α with α  = 0.80, which is attributed to the carrier trapping at higher light power. Furthermore, power‐dependent transient absorption spectroscopy is studied and observed that at higher fluence, carrier scattering can be dominating. Interestingly, it is found that at higher power, hot carrier relaxation dynamics are altered, and electron‐phonon coupling is enhanced, resulting in a lower carrier concentration participating in the photocatalytic reaction, which can limit charge carrier extraction and CO2 reduction. This study highlights the potential of perovskite semiconductors as promising candidates for photocatalytic reactions in low‐light conditions, broadening their applicability in real‐world scenarios.

Publisher

Wiley

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