Morphology Tuning via Linker Modulation: Metal‐Free Covalent Organic Nanostructures with Exceptional Chemical Stability for Electrocatalytic Water Splitting

Author:

Karak Shayan12,Koner Kalipada12,Karmakar Arun34,Mohata Shibani12,Nishiyama Yusuke56,Duong Nghia Tuan56,Thomas Neethu7,Ajithkumar Thalasseril Govindankuttykaimal7,Hossain Munshi Sahid12,Bandyopadhyay Subhajit12,Kundu Subrata34,Banerjee Rahul12ORCID

Affiliation:

1. Department of Chemical Sciences Indian Institute of Science Education and Research Mohanpur Kolkata 741246 India

2. Centre for Advanced Functional Materials Indian Institute of Science Education and Research Mohanpur Kolkata 741246 India

3. Academy of Scientific and Innovative Research Ghaziabad 201002 India

4. Electrochemical Process Engineering (EPE) Division CSIR‐Central Electrochemical Research Institute (CECRI) Karaikudi Tamil Nadu 630003 India

5. RIKEN‐JEOL Collaboration Center RIKEN Yokohama Kanagawa 230‐0045 Japan

6. JEOL Ltd. Musashino Akishima Tokyo 196–8558 Japan

7. Central NMR Facility and Physical/Materials Chemistry Division CSIR‐National Chemical Laboratory Dr. HomiBhabha Road Pune 411008 India

Abstract

AbstractThe development of synthetic routes for the formation of robust porous organic polymers (POPs) with well‐defined nanoscale morphology is fundamentally significant for their practical applications. The thermodynamic characteristics that arise from reversible covalent bonding impart intrinsic chemical instability in the polymers, thereby impeding their overall potential. Herein, a unique strategy is reported to overcome the stability issue by designing robust imidazole‐linked POPs via tandem reversible/irreversible bond formation. Incorporating inherent rigidity into the secondary building units leads to robust microporous polymeric nanostructures with hollow‐spherical morphologies. An in‐depth analysis by extensive solid‐state NMR (1D and 2D) study on 1H, 13C, and 14N nuclei elucidates the bonding and reveals the high purity of the newly designed imidazole‐based POPs. The nitrogen‐rich polymeric nanostructures are further used as metal‐free electrocatalysts for water splitting. In particular, the rigid POPs show excellent catalytic activity toward the oxygen evolution reaction (OER) with long‐term durability. Among them, the most efficient OER electrocatalyst (TAT‐TFBE) requires 314 mV of overpotential to drive 10 mA cm−2 current density, demonstrating its superiority over state‐of‐the‐art catalysts (RuO2 and IrO2).

Funder

Science and Engineering Research Board

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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