Low-Temperature Combustion Synthesis of Metals and Metal Oxides via Isobutylene-Generating Complexing Agents

Abstract Solution combustion synthesis (SCS) is a low-temperature synthesis technique leveraging a highly exothermic combustion reaction between a metal complexed by an organic fuel and oxidant (e.g., nitrate) to generate metals and metal compounds such as oxides, nitrides, and carbides at reduced applied temperatures compared to conventional solution methods. However, many ideal hydrocarbon fuels for low-temperature combustion processes are too volatile and noncoordinating to metal cations in solution, making them poorly suited for SCS. Here, we present SCS complexing agents, which contain t-butyl ester functionality capable of generating isobutylene in situ at low applied temperatures, which acts as a potent fuel in the combustion process. We form four important oxides and metal/oxide combined nanostructures: InOx, MnOx, NiOx, and CoOx at applied temperatures <150 °C including the formation of InOx at <80 °C which is, to our knowledge, the lowest purely heat-initiated SCS reaction observed to date. This work reveals that isobutylene-generating fuels, particularly for the indium cation, are a powerful tool for applications demanding oxides at low formation temperatures.

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Journal
Chemistry of Materials
Published
2026-09-17
DOI
https://doi.org/10.1021/acs.chemmater.6c01946
Primary Topic
Catalytic Processes in Materials Science
Type
article
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article

Low-Temperature Combustion Synthesis of Metals and Metal Oxides via Isobutylene-Generating Complexing Agents

Thomas W. Colburn, Abigail Carbone, Robert D. Miller, Reinhold H. Dauskardt et al.
Chemistry of Materials
Catalytic Processes in Materials Science
article

Low-Temperature Combustion Synthesis of Metals and Metal Oxides via Isobutylene-Generating Complexing Agents

Thomas W. Colburn, Abigail Carbone, Robert D. Miller, Reinhold H. Dauskardt, David W. Collinson
article en

Abstract

Abstract Solution combustion synthesis (SCS) is a low-temperature synthesis technique leveraging a highly exothermic combustion reaction between a metal complexed by an organic fuel and oxidant (e.g., nitrate) to generate metals and metal compounds such as oxides, nitrides, and carbides at reduced applied temperatures compared to conventional solution methods. However, many ideal hydrocarbon fuels for low-temperature combustion processes are too volatile and noncoordinating to metal cations in solution, making them poorly suited for SCS. Here, we present SCS complexing agents, which contain t-butyl ester functionality capable of generating isobutylene in situ at low applied temperatures, which acts as a potent fuel in the combustion process. We form four important oxides and metal/oxide combined nanostructures: InOx, MnOx, NiOx, and CoOx at applied temperatures <150 °C including the formation of InOx at <80 °C which is, to our knowledge, the lowest purely heat-initiated SCS reaction observed to date. This work reveals that isobutylene-generating fuels, particularly for the indium cation, are a powerful tool for applications demanding oxides at low formation temperatures.

Chemistry of Materials
Stanford University (US)
Openalex Percentile: Top 24%
Catalytic Processes in Materials Science
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Low-Temperature Combustion Synthesis of Metals and Metal Oxides via Isobutylene-Generating Complexing Agents — Thomas W. Colburn, Abigail Carbone, et al. · Chemistry of Materials (2026) | TGRS Research Map | TGRS