Comparative Study of Solvatomorphs of Stryker's Reagent Using MicroED and Quantum Mechanics

K Kunal K. Jha (Division of Chemistry and Chemical Engineering) J Jacob O. Rothbaum (Division of Chemistry and Chemical Engineering, Arthur Amos Noyes Laboratory of Chemical Physics) V Vignesh C. Bhethanabotla (Division of Chemistry & Chemical Engineering California Institute of Technology Pasadena CA 91125 USA) C Charles B. Musgrave (Department of Chemistry) C Christopher G. Jones (Department of Chemistry and Biochemistry) S Sergey I. Morozov (Department of Physics of Nanoscale Systems South Ural State University Chelyabinsk 454080 Russia) W William A. Goddard H Hosea M. Nelson (Division of Chemistry and Chemical Engineering)

Abstract

Abstract The atomic position of hydrogen atoms in metal hydrides has been a long‐standing structural question in inorganic chemistry given that hydride delivery is integral to diverse chemical reactions. Microcrystal electron diffraction (microED), with it's increased sensitivity toward hydrogen atoms relative to X‐ray diffraction, offers a potential path to addressing this challenge. Herein, the first microED study of Stryker's reagent is reported, resulting in the structure of a new benzene solvate. Improved accuracy for hydrogen atom positions was obtained via a quantum crystallography (QCr) approach, Hirshfeld atom refinement (HAR). Structural and topological analysis supports edge bridging hydrides in the microED structure of a THF solvate form, consistent with previous diffraction studies. Interestingly, analysis of a new benzene solvate, discovered in this study, is consistent with mixed edge‐ and face‐bridging hydrides.

Article Details

Volume / Issue Vol. 64, Issue 28
Published July 07, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

K

Kunal K. Jha

Division of Chemistry and Chemical Engineering

J

Jacob O. Rothbaum

Division of Chemistry and Chemical Engineering, Arthur Amos Noyes Laboratory of Chemical Physics

V

Vignesh C. Bhethanabotla

Division of Chemistry & Chemical Engineering California Institute of Technology Pasadena CA 91125 USA

C

Charles B. Musgrave

Department of Chemistry

C

Christopher G. Jones

Department of Chemistry and Biochemistry

S

Sergey I. Morozov

Department of Physics of Nanoscale Systems South Ural State University Chelyabinsk 454080 Russia

W

William A. Goddard

H

Hosea M. Nelson

Division of Chemistry and Chemical Engineering