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Dos Santos-Garcia, Antonio JAuthor

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February 11, 2026
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Redirecting electron transfer toward synergistic peroxymonosulfate activation via A-Site nonstoichiometry in perovskite oxide

Publicated to: CHEMICAL ENGINEERING JOURNAL. 530 173338- - 2026-02-15 530(), DOI: 10.1016/j.cej.2026.173338

Authors:

Gao, Jingqing; Cui, Lin; Chen, Tingyu; Shi, Chenxi; Gorni, Giulio; Shen, Yu; Dos Santos-Garcia, Antonio J
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Affiliations

CELLS ALBA Synchrotron Light Facil, Cerdanyola Del Valles 08290, Spain - Author
CSIC, Ceram & Glass Inst, Madrid 28049, Spain - Author
Univ Politecn Madrid, Escuela Tecn Super Ingn & Diseno Ind, Dept Ingn Mecan Quim & Diseno Ind, Madrid 28012, Spain - Author
Zhengzhou Univ, Sch Ecol & Environm, Zhengzhou 450001, Peoples R China - Author
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Abstract

The pervasive presence of pharmaceuticals and personal care products (PPCPs) in aquatic systems necessitates advanced oxidation processes for their effective removal. While perovskite oxides are promising peroxymonosulfate (PMS) activators, research has predominantly focused on B-site optimization, leaving the strategic potential of A-site nonstoichiometry largely unexplored. This study demonstrates that precise A-site engineering in LaxCoO3 perovskites is a highly effective strategy for tailoring catalytic performance. We reveal that a slight La excess (x = 1.05) induces surface La enrichment and optimizes the Co electronic structure, leading to a reduced Co valence state and elongated CoO bonds. This unique configuration fosters a synergistic radical and non-radical (electron transfer) pathway for PMS activation. In contrast, La-deficient (x < 1) and excessively La-rich (x = 1.1) compositions suffer from surface depletion and detrimental La2O3 phase segregation, respectively. The optimized La1.05CoO3 catalyst achieves superior degradation and mineralization of paracetamol and various antibiotics, exhibiting enhanced kinetics, exceptional stability in complex water matrices, and high PMS utilization efficiency. Combined experimental and theoretical analyses confirm that the surface La species promote PMS adsorption, while the modulated electronic structure facilitates efficient electron transfer. This work establishes A-site nonstoichiometry as a fundamental and powerful design lever for developing high-performance perovskite catalysts in environmental remediation.
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Keywords

A-site nonstoichiometryAdvanced oxidationAdvanced oxidation processCatalystsDegradationElectron transfer pathwayMechanismPerovskite oxidesPeroxymonosulfate activationRate constantsSinglet oxygen

Quality index

Bibliometric impact. Analysis of the contribution and dissemination channel

The work has been published in the journal CHEMICAL ENGINEERING JOURNAL due to its progression and the good impact it has achieved in recent years, according to the agency WoS (JCR), it has become a reference in its field. In the year of publication of the work, 2026, it was in position 3/83, thus managing to position itself as a Q1 (Primer Cuartil), in the category Engineering, Environmental. Notably, the journal is positioned above the 90th percentile.

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Leadership analysis of institutional authors

This work has been carried out with international collaboration, specifically with researchers from: China.

There is a significant leadership presence as some of the institution’s authors appear as the first or last signer, detailed as follows: Last Author (DOS SANTOS GARCIA, ANTONIO JUAN).

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Awards linked to the item

The authors acknowledge support from the National Postdoctoral Science Foundation of China (2024M752945) , 2025 Henan Province High-End Foreign Experts Recruitment Program (HNGD2025006) , Key Scientific Research Project of Higher Education Institutions in Henan Province (25B610005) and Youth Science Fund Project of the Natural Science Foundation of Henan Province (242300420412) . XAS experiments were performed at the CLAESS beamline at ALBA Synchrotron (Proposal No. 2021035129) with the collaboration of ALBA staff.
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