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Advanced Materials· 2026Q1· Review

Redefining Water Oxidation Selectivity Through Electrolyte Microenvironment Engineering

Jialu Liu, Mingyu Sun, Bin Zhao, Xi Zhang et al.

Short summary

Electrolyte engineering can actively control the water oxidation reaction (WOR) to selectively produce H2O2, overcoming limitations of catalyst-site regulation alone.

AI-generated from the title and abstract; the full text is not read.

Key points

  • The electrolyte microenvironment is a critical variable for controlling water oxidation selectivity, complementing catalyst-site regulation.
  • Electrolytes can be engineered to influence water polarization, intermediate configurations, proton-electron transfer barriers, and H2O2 decomposition.
  • A framework of 'electrolyte-encoded reaction pathways' distinguishes direct, electrolyte-assisted, and indirect H2O2 synthesis mechanisms.
  • This approach links electrolyte properties to catalyst-electrolyte coupling, enhancing H2O2 selectivity, stability, and system performance.

AI-generated from the title and abstract; the full text is not read.

Abstract

ABSTRACT The two‐electron water oxidation reaction (2e − WOR) offers a sustainable route to in situ H 2 O 2 production from water, distinct from the anthraquinone process and direct H 2 /O 2 synthesis. Its central challenge is the competition between H 2 O 2 formation and the four‐electron oxygen evolution reaction (OER), governed by water polarization, hydroxyl‐intermediate formation, O─O bond construction, peroxy‐species desorption, and product stability. Because catalyst‐site regulation alone rarely optimizes selectivity, stability, and productivity simultaneously, the electrolyte microenvironment becomes a critical reaction variable. Through specific ion adsorption, electric‐double‐layer reconstruction, local pH control, solvation and hydrogen‐bond‐network regulation, and interfacial electric fields, electrolytes reshape intermediate configurations, proton‐electron transfer barriers, and H 2 O 2 decomposition. This Review introduces the framework of “electrolyte‐encoded reaction pathways” to describe how electrolyte‐derived interfacial states differentially regulate competing H 2 O 2 ‐forming channels. It distinguishes direct surface‐mediated 2e − WOR, electrolyte‐assisted direct 2e − WOR, and indirect electrolyte‐mediated anodic H 2 O 2 synthesis, thereby separating pathway regulation from reaction‐network reconstruction. By linking electrolyte descriptors and catalyst‐electrolyte coupling to selectivity, H 2 O 2 stability, and system‐level performance, this framework redefines the electrolyte as an active variable in reaction‐network design.

The authors' abstract, as published at the source. Advanced Materials, 2026 · DOI ↗

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Field: Renewable Energy, Sustainability and the Environment

Renewable Energy, Sustainability and the EnvironmentEnergy