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Solid-phase Synthesis of [4.4] Spirocyclic Oximes
Published on: February 6, 2019
Orchestrating Reactive Intermediates: Unlocking Near-Complete Oxidant Utilization in Electrochemical-Thermal Cascade
Wenkai Ye1, Yuefeng Qiu1, Peng Jiang1
1State Key Laboratory of Materials-oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, Nanjing, People's Republic of China.
Abstract:
Oxime synthesis via hydroxylamine is the preferred route and is conventionally achieved by ammoxidation of ammonia with hydrogen peroxide. Yet, in alkaline environments, the simultaneous presence of ionic hydroperoxide (OOH-) and molecular H2O2 severely constrains oxidant efficiency. Here, we introduce a life cycle control strategy that coordinates the generation, stabilization, transport, and consumption of OOH- to concentrate it into a centralized OOH- population. Implemented in a continuous electrochemical-thermal cascade operating in weakly protic methanol, this approach enables efficient oxime production directly from ammonia and offers a route to reengineer traditional manufacturing. Detailed mechanistic studies show that the centralized OOH- population yields an oxidant utilization efficiency of up to 96.8% and a 60.3% enhancement in oxime synthesis rate versus conventional thermocatalysis. By establishing a paradigm for regulating the population of a key reactive intermediate, this work delivers guiding principles for the rational design of advanced cascade catalytic systems.
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