TY - JOUR
T1 - A Non-Equilibrium Flame Aerosol Process to Create High-Entropy MOFs
AU - Liu, Shuo
AU - Liang, Jiashun
AU - Khan, Mohd Ashhar
AU - Das, Shaon
AU - Li, Jialu
AU - Zheng, Chao
AU - Ghose, Sanjit
AU - Wierzbicki, Dominik
AU - Jiang, Qike
AU - Chen, Kaiwen
AU - Scalzo, Christina T.
AU - Xuan, Zhengxi
AU - Karepakula, Sai Varun
AU - Zhao, Yaoli
AU - Wang, Kun
AU - Guo, Jinghua
AU - Mazumder, Baishakhi
AU - Chen, Wei
AU - Shi, Kaihang
AU - Wu, Gang
AU - Urban, Jeffrey J.
AU - Swihart, Mark T.
AU - Dun, Chaochao
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - High-entropy alloys and ceramics have demonstrated promising applications in the past decade. Ultrafast heating and cooling can kinetically trap immiscible elements into solid solutions, expanding the compositional space and optimizing the properties of high-entropy materials. However, the extreme temperatures required by these non-equilibrium methods are incompatible with metal–organic frameworks (MOFs). This work presents a flame aerosol strategy for synthesizing compositionally complex, entropically stabilized MOFs, enabling new combinations of properties previously inaccessible in this class of materials. Using the HKUST structure as a prototype, this methodology is extended to a wide array of both crystalline and amorphous MOFs, and then to a 10-element MOF that incorporates transition metals, rare-earth metals, alkaline-earth metals, p-block metals, and noble metals. This strategy can be further applied to inorganic coordination polymers. This study reveals that kinetics and entropy collectively drive structural short-range periodicity and configurational disorder in the framework, which in turn influence crystallinity, pore architecture, defect density, homogeneity, and electrochemical properties. This work expands the compositional design space for MOFs and offers new opportunities for their fundamental study and practical application.
AB - High-entropy alloys and ceramics have demonstrated promising applications in the past decade. Ultrafast heating and cooling can kinetically trap immiscible elements into solid solutions, expanding the compositional space and optimizing the properties of high-entropy materials. However, the extreme temperatures required by these non-equilibrium methods are incompatible with metal–organic frameworks (MOFs). This work presents a flame aerosol strategy for synthesizing compositionally complex, entropically stabilized MOFs, enabling new combinations of properties previously inaccessible in this class of materials. Using the HKUST structure as a prototype, this methodology is extended to a wide array of both crystalline and amorphous MOFs, and then to a 10-element MOF that incorporates transition metals, rare-earth metals, alkaline-earth metals, p-block metals, and noble metals. This strategy can be further applied to inorganic coordination polymers. This study reveals that kinetics and entropy collectively drive structural short-range periodicity and configurational disorder in the framework, which in turn influence crystallinity, pore architecture, defect density, homogeneity, and electrochemical properties. This work expands the compositional design space for MOFs and offers new opportunities for their fundamental study and practical application.
KW - MOFs
KW - flame spray pyrolysis
KW - high-entropy materials
KW - non-equilibrium synthesis
UR - https://www.scopus.com/pages/publications/105045388922
U2 - 10.1002/adma.74201
DO - 10.1002/adma.74201
M3 - Article
AN - SCOPUS:105045388922
SN - 0935-9648
JO - Advanced Materials
JF - Advanced Materials
ER -