**Executive Summary:**
The Ministry of Science and Technology announced the development of a novel, cost-effective, metal-free porous organic catalyst for efficient hydrogen fuel production by harvesting mechanical energy. This research, led by Professor Tapas K. Maji from JNCASR Bengaluru, supports India's National Green Hydrogen Mission by providing a sustainable alternative for hydrogen production through piezocatalytic water splitting. The new catalyst outperforms oxide-based inorganic piezocatalysts.
**Key Points / Main Content:**
* **Catalyst Development:**
* A metal-free donor-acceptor covalent organic framework (COF) has been developed for piezocatalytic water splitting.
* The COF is built from imide linkages between organic donor molecule tris(4-aminophenyl)amine (TAPA) and acceptor molecule pyromellitic dianhydride (PDA), exhibiting ferrielectric (FiE) ordering.
* **Technological Advancement:**
* The COF overcomes the limitations of traditional metal-based ferroelectric materials by providing enhanced charges at pore surfaces due to large local electric fields.
* The porous structure of the COF allows efficient diffusion of water molecules, resulting in ultrahigh H2 production yields.
* **Scientific Explanation:**
* The TAPA units' propeller-like shape and the COF's electronic structure with dipolar ordering enable responsiveness to mechanical pressure, generating electron-hole pairs for efficient water splitting.
* **Collaboration:**
* The research involved collaboration between JNCASR, Indian Institute of Science Education and Research, Pune, and Wrocaw University of Science and Technology, Poland.
**Impact Analysis:**
**Ministry of Science and Technology/Government of India:**
* *Impact:* Supports the National Green Hydrogen Mission, positioning India as a leader in the H2 economy and promoting sustainable energy alternatives.
* *Action Required:* Continue supporting research and development in green hydrogen technologies and promote large-scale production and innovation.
**Researchers (Specifically Professor Tapas K. Maji and Team):**
* *Impact:* Potential for recognition and further funding to expand research on metal-free catalysts and piezocatalytic water splitting.
* *Action Required:* Continue research to optimize the catalyst and explore practical applications for hydrogen production.
**Industry Stakeholders (Energy Companies):**
* *Impact:* Opportunity to adopt a cost-effective and environmentally friendly method for hydrogen fuel production.
* *Action Required:* Evaluate the feasibility of integrating the new catalyst technology into existing or future hydrogen production facilities.
**Global Environment:**
* *Impact:* Contributes to reducing reliance on fossil fuels, lowering carbon emissions, and mitigating global warming.
* *Action Required:* Promote the adoption of green hydrogen technologies worldwide to combat climate change.
Key Entities Referenced
National Green Hydrogen Mission: A Government of India initiative to promote large-scale production of green hydrogen, research and innovation, and establish the country as a leader in the hydrogen economy.
Jawaharlal Nehru Centre for Advanced Scientific Research JNCASR Bengaluru: An autonomous research institution under the Department of Science Technology, located in Bengaluru, Karnataka, involved in the development of a metal-free catalyst.
Professor Tapas K. Maji: A professor from the Chemistry and Physics of Materials Unit at JNCASR Bengaluru, who led the research team that developed the metal-free catalyst.
Department of Science Technology: A department of the Government of India, under which JNCASR operates.
Advanced Functional Materials: A journal in which the study on the covalent-organic framework (COF) was published.
Covalent organic framework COF: A metalfree donoracceptor based material developed for piezocatalytic water splitting.
Indian Institute of Science Education and Research, Pune: An academic institution where Dr. Supriya Sahoo and Prof. Ramamoorthy Boomishankar contributed to the interdisciplinary study.
Wrocław University of Science and Technology, Poland: An academic institution where Prof. Jan K. Zarba contributed to the interdisciplinary study.
Ministry of Science & Technology
New metal-free organic catalyst can produce
hydrogen fuel by harvesting mechanical energy
Posted On: 05 MAY 2025 4:58PM by PIB Delhi
Researchers have developed a novel, cost-effective, metal-free porous organic catalyst for efficient H
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production by harvesting mechanical energy.
In order to reduce the global warming and related impact of fossil fuels, transition towards sustainable
alternatives based on renewable energy becomes increasingly critical. Green hydrogen (H₂) fuel has emerged
as a game-changing renewable and clean-burning energy source, which generates no direct carbon emissions
and only water as a by-product when used in fuel cells. Recognizing the critical role of green H in
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sustainable energy, the Government of India launched the National Green Hydrogen Mission to drive large-
scale production, promote research and innovation, and position the country as a global leader in H economy.
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Among the environmentally benign methods of H production, overall water splitting stands out as
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an eective and scalable technique that relies on a catalytic strategy since the reaction is
energetically uphill. Piezocatalysis has emerged as a promising catalytic technology which harvests
mechanical perturbations with a piezoelectric material to generate charge carriers that are utilized to
catalyze water splitting.
In recent groundbreaking research work, Professor Tapas K. Maji from Chemistry and Physics of
Materials Unit at Jawaharlal Nehru Centre for Advanced Scientific Research (JNCASR) Bengaluru
(an autonomous institution under the Department of Science & Technology, Govt. of India) and his
research team have developed a metal-free donor-acceptor based covalent-organic framework
(COF) for piezocatalytic water splitting. This study published in Advanced Functional Materials
demonstrates a Covalent organic framework (COF) built from imide linkages between organic donor
molecule tris(4-aminophenyl)amine (TAPA) and acceptor molecule pyromellitic dianhydride (PDA)
acceptor exhibiting unique ferrielectric (FiE) ordering, which showed efficient piezocatalytic activity
for water splitting to produce H .
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This discovery breaks the traditional notion of solely employing heavy or transition metal-based
ferroelectric (FE) materials as piezocatalysts for catalyzing water splitting reaction. Conventional FE
materials have limited charges confined at the surface only which usually lead to quick saturation of
their piezocatalytic activity. In contrast, FiE ordering in a COF provides a multifold enhanced
number of charges at the pore surfaces owing to the large local electric fields. The sponge-like
porous structure of a COF allows the diffusion of water molecules to efficiently access and utilize
these charge carriers for catalysis, giving ultra-high H production yields and outperforming all
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oxide-based inorganic piezocatalysts.Figure: Schematic showing piezocatalytic water splitting by a metal-free donor-acceptor based covalent
organic framework.
Using a simple donor molecule like TAPA and an acceptor molecule like PDA, Prof. Maji and his
research team have built a COF system that has strong charge transfer properties, which creates
dipoles (separation between positive and negative charges).
The TAPA units have a unique propeller-like shape, where their benzene rings twist and tilt to break the flat
symmetry of the structure, helping it reach a more stable, lower-energy state. Prof. Umesh V. Waghmare and
his team from JNCASR, who are collaborators of the study, showed using theoretical analyses that this COF
has an unusual electronic structure with energy bands that couple and resonate with each other by dipolar
ordering. This causes instability in the lattice structure, leading to FiE ordering. These FiE dipoles interact
with flexible twisting molecular motion in the material, making them responsive to mechanical pressure. As a
result, the material can generate electron-hole pairs when mechanically stimulated, making it a highly
efficient piezocatalyst for water splitting for H production. The team comprises four other researchers from
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JNCASR: Ms. Adrija Ghosh, Ms. Surabhi Menon, Dr. Sandip Biswas and Dr. Anupam Dey.
Apart from JNCASR, Dr. Supriya Sahoo and Prof. Ramamoorthy Boomishankar from Indian
Institute of Science Education and Research, Pune and Prof. Jan K. Zarba from Wrocaw University
of Science and Technology, Poland made important contributions to the present interdisciplinary
study.
The utilization of a cost-effective, metal-free system with a high production rate of H by harvesting
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mechanical energy opens up a new route to green H based on porous heterogeneous catalysts.
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***
NKR/PSM
(Release ID: 2127064)