Dynamic three-dimensional structures of a metal–organic framework captured with femtosecond serial crystallography

Author:

Kang JaedongORCID,Lee Yunbeom,Lee SeonggonORCID,Ki HosungORCID,Kim JungminORCID,Gu JainORCID,Cha YongjunORCID,Heo JunORCID,Lee Kyung WonORCID,Kim Seong Ok,Park Jaehyun,Park Sang-YounORCID,Kim Sangsoo,Ma Rory,Eom IntaeORCID,Kim Minseok,Kim JeonghoORCID,Lee Jae HyukORCID,Ihee HyotcherlORCID

Abstract

AbstractCrystalline systems consisting of small-molecule building blocks have emerged as promising materials with diverse applications. It is of great importance to characterize not only their static structures but also the conversion of their structures in response to external stimuli. Femtosecond time-resolved crystallography has the potential to probe the real-time dynamics of structural transitions, but, thus far, this has not been realized for chemical reactions in non-biological crystals. In this study, we applied time-resolved serial femtosecond crystallography (TR-SFX), a powerful technique for visualizing protein structural dynamics, to a metal–organic framework, consisting of Fe porphyrins and hexazirconium nodes, and elucidated its structural dynamics. The time-resolved electron density maps derived from the TR-SFX data unveil trifurcating structural pathways: coherent oscillatory movements of Zr and Fe atoms, a transient structure with the Fe porphyrins and Zr6 nodes undergoing doming and disordering movements, respectively, and a vibrationally hot structure with isotropic structural disorder. These findings demonstrate the feasibility of using TR-SFX to study chemical systems.

Funder

Institute for Basic Science

Institute for Basic Science(IBS), South Korea

Publisher

Springer Science and Business Media LLC

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