Authors
Vishakha Takhar, Dharam Dev, Soumyajit Jana, Rupak Banerjee, Arnab Dutta
Published in
Chemphyschem : a European journal of chemical physics and physical chemistry. Volume 27. Issue 14. Pages e70519. Jul 29, 2026.
Abstract
Perovskite materials have emerged as versatile platforms for sustainable photocatalytic and photoelectrocatalytic applications, addressing critical challenges in environmental remediation and clean energy conversion. This Review comprehensively examines oxide perovskites (ABO3), lead-based and lead-free halide perovskites (ABX3, A3B2X9), layered architectures including Ruddlesden-Popper and Dion-Jacobson phases, and perovskite-derived catalysts for pollutant degradation, CO2 reduction, water splitting (HER/OER), and integrated waste-to-fuel conversion. Unlike previous reviews that separately focus on oxide or halide systems or isolated applications, this work establishes a unified environmental-energy catalysis framework that systematically compares diverse perovskite families while emphasizing the transition from Pb-based to Pb-free architectures. Particular attention is given to defect-mediated structure-function relationships, including A/B-site engineering, oxygen and halide vacancy regulation, and heterostructure design, which collectively enhance visible-light harvesting, charge separation, and multielectron redox kinetics. Side-by-side comparisons of lead-based and lead-free systems clarify the catalytic, environmental, and stability implications of Pb substitution. Although Pb-free perovskites offer significant sustainability advantages, challenges related to long-term durability, mechanistic understanding, and scalable synthesis remain unresolved. Future directions involving DFT- and machine learning-guided design, interface engineering, and pilot-scale implementation are highlighted to accelerate the development of next-generation sustainable perovskite catalysts.
PMID:
42525962
Bibliographic data and abstract were imported from PubMed on 30 Jul 2026.
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