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Shedding Light on the Mechanistic Facets of Photochemical Transformations for devising efficient Photocatalysts: A Multi-Pronged Theoretical Approach

Implementing Organization

Principal Investigator
Prof. Ankan Paul
Indian Association For The Cultivation Of Science (Iacs), Kolkata
rcap@iacs.res.in
CO-Principal Investigator
Dr. Swapan Chakrabarti
University Of Calcutta, 87 /1, College Street, Kolkata,West Bengal,Kolkata-700073

Project Overview

1. Motivation for the Proposal: Catalysis remains foundational in producing everyday chemicals, yet conventional thermal methods often demand harsh conditions and have high carbon footprints. Photocatalysis has emerged as an eco-friendly alternative, enabling thermodynamically challenging conversions under milder conditions and with lower environmental impact. Among these, metallaphotoredox catalysts the Ir(III)/ Ni(II) photocatalytic couple -mediated cross-coupling has ushered in a new era for synthesizing C–C, C–N, and C–X bonds (X = halogen, oxygen). However, mechanistic understanding remains fragmented. Concurrently, host–guest photocatalysis using coordination cages or covalent organic frameworks (COFs) allows activation of even weakly polarized C(sp³)–H bonds under visible light, yet its underlying mechanisms remain largely unexplored 2. State of the Art Review: A. Ir(III)/Ni(II) Photocatalysis – International Scenario: Leading research groups (Molander, Doyle, MacMillan, Hadt, Shaik, Chen) have proposed conflicting mechanistic models involving homolytic Ni–X bond cleavage via triplet–triplet energy transfer, oxidative or reductive single-electron transfer (SET), and Ni(III) intermediates fragmenting to X· radicals. Yet the exact initiation route (homolysis vs. SET; excited-state lifetimes; role of intersystem crossing) remains unclear. Knowledge gaps: Key unknowns include excited-state dynamics, ISC/IC processes, solvent and spin-orbit coupling effects, and substrate dependence. B. Host–Guest Photocatalysis of C–H Bonds – Global & Indian Scenario: Fujita’s Pd₆L₄ coordination cages catalyze photo-oxidation of alkanes under mild conditions. Mechanistic suggestions include ultrafast host-to-guest charge transfer initiating oxidation, but deeper understanding is lacking. Dasgupta’s team extended this to arenes using Pd₆L₄ and metal-free cages, implicating light-triggered proton-coupled electron transfer (PCET). Yet the precise sequence: charge separation, radical intermediate formation, oxygen involvement remains unresolved. No computational studies yet describe excited-state dynamics or charge-transfer mechanisms driving oxidation. 3. Project Objectives and Innovation: A. Ir(III)/Ni(II) Mechanistic Elucidation: (I) Simulate excited-state dynamics to distinguish between homolytic and heterolytic pathways. (II) Compute ISC/IC rates; identify singlet–triplet crossing points. (III) Use QM/MM and quantum chemical tools to study bond cleavage, radical coupling, solvent interactions, and Ir(III)* / Ni(II) activation. Innovation: Apply non-adiabatic dynamics simulations and develop machine-learned potentials (MLPs) tailored to excited-state transition-metal chemistry. Insights will guide photocatalyst design for pharma and synthetic chemists. B. Computational Study of Host–Guest Photocatalysis: (I) Map charge-transfer excited states, PCET pathways, and radical intermediates in nanocages and COFs using static and dynamic quantum chemical methods. (II) Explore O₂’s role post-light-induced charge separation, including radical oxygen species. Innovation: Establish a framework linking photoinduced charge dynamics, substrate oxidation, and host effects. Supports design of metal-free photooxidative systems in porous molecular architectures. 5. Summary: By integrating quantum dynamics, machine-learned potentials, and QM/MM modelling, this project pioneers theoretical studies of two emerging photocatalytic frontiers—transition-metal photoredox and host–guest supramolecular systems. The outcomes will demystify elusive mechanisms and offer new paths for extending synthetic scope.
Funding Organization
Quick Information
Area of Research
Chemical Sciences
Focus Area
Physical Chemistry
Start Date
23 Mar 2026
End Date
22 Mar 2030
Status
ongoing
Output
No. of Research Paper
00
Technologies (If Any)
00
No. of PhD Produced
00
Publications
00
No. of Patents
Filed : 00
Grant : 00
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