Synergistic Roles of Hydroxyl Groups and Coordinating Ligands in Governing Metal-Specific Electrocatalytic Nitrate Reduction in Covalent Organic Framework

Abstract Electrocatalytic nitrate reduction is often framed in terms of metal identity, yet the decisive factor governing reactivity remains the local coordination environment in which that metal is embedded. Here, we demonstrate that a covalent organic framework (COF) can be engineered to encode a hydroxyl–ligand cooperative microenvironment that actively dictates metal-specific catalytic behavior. Using a bipyridine-functionalized, hydroxyl-bearing COF (TU-42) as a platform, we show that postsynthetic incorporation of Fe and Ni produces two fundamentally distinct single-site architectures: a relatively open, electronically adaptive Fe–N/O manifold and a coordination-saturated Ni–N/O/Cl environment. Through a combined electrochemical–spectroscopic–theoretical analysis, we reveal that framework hydroxyl groups do not merely tune the electronic structure but establish directional hydrogen-bonding interactions with coordinated acetate ligands in TU-42-Fe, dynamically modulating the ligand field and redox accessibility of the active site. This cooperative effect lowers the barrier for nitrate activation, biases reaction topology toward energetically favorable pathways, and enhances the coupling between electron flux and ammonia formation. In contrast, the more rigid and saturated Ni coordination sphere imposes an energetic penalty for substrate access and restricts mechanistic flexibility. This work establishes a design principle in which secondary-sphere interactions embedded within a reticular scaffold govern reaction pathways, offering a route to control electrocatalysis beyond conventional metal-centered strategies.

Authors

Institutions

Publication Details

Journal
ACS Materials Au
Published
2026-09-10
DOI
https://doi.org/10.1021/acsmaterialsau.6c00186
Primary Topic
Ammonia Synthesis and Nitrogen Reduction
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Synergistic Roles of Hydroxyl Groups and Coordinating Ligands in Governing Metal-Specific Electrocatalytic Nitrate Reduction in Covalent Organic Framework

Ranjit Thapa, Yuichi Negishi, Tsukasa Irie, Tokuhisa Kawawaki et al.
ACS Materials Au
Ammonia Synthesis and Nitrogen Reduction
article

Synergistic Roles of Hydroxyl Groups and Coordinating Ligands in Governing Metal-Specific Electrocatalytic Nitrate Reduction in Covalent Organic Framework

Ranjit Thapa, Yuichi Negishi, Tsukasa Irie, Tokuhisa Kawawaki, Shiho Tomihari, Kohki Sasaki, Riki Nakatani, Saikat Das, Chaoqi Chen, Sourav Ghosh, Ayumu Kondo
article en

Abstract

Abstract Electrocatalytic nitrate reduction is often framed in terms of metal identity, yet the decisive factor governing reactivity remains the local coordination environment in which that metal is embedded. Here, we demonstrate that a covalent organic framework (COF) can be engineered to encode a hydroxyl–ligand cooperative microenvironment that actively dictates metal-specific catalytic behavior. Using a bipyridine-functionalized, hydroxyl-bearing COF (TU-42) as a platform, we show that postsynthetic incorporation of Fe and Ni produces two fundamentally distinct single-site architectures: a relatively open, electronically adaptive Fe–N/O manifold and a coordination-saturated Ni–N/O/Cl environment. Through a combined electrochemical–spectroscopic–theoretical analysis, we reveal that framework hydroxyl groups do not merely tune the electronic structure but establish directional hydrogen-bonding interactions with coordinated acetate ligands in TU-42-Fe, dynamically modulating the ligand field and redox accessibility of the active site. This cooperative effect lowers the barrier for nitrate activation, biases reaction topology toward energetically favorable pathways, and enhances the coupling between electron flux and ammonia formation. In contrast, the more rigid and saturated Ni coordination sphere imposes an energetic penalty for substrate access and restricts mechanistic flexibility. This work establishes a design principle in which secondary-sphere interactions embedded within a reticular scaffold govern reaction pathways, offering a route to control electrocatalysis beyond conventional metal-centered strategies.

ACS Materials Au
Tohoku University (JP), SRM University, Andhra Pradesh (IN), SRM University (IN)
Openalex Percentile: Top 30%
Ammonia Synthesis and Nitrogen Reduction
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.