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Unraveling hydridic-to-protonic dihydrogen bond predominance in monohydrated dodecaborate clusters. | LitMetric

AI Article Synopsis

  • Hydridic-to-protonic dihydrogen bonds (DHBs) play a crucial role in influencing the structure and reactivity of chemical systems, with significant challenges in understanding their strength and bonding nature.
  • This study utilized photoelectron spectroscopy and theoretical modeling to investigate monohydrated dodecaborate clusters, revealing that B-H⋯H-O DHBs are significantly stronger than traditional hydrogen bonds involving other elements (B-X⋯H-O).
  • The research highlights the importance of DHBs in aqueous environments and suggests that optimizing these interactions could lead to more efficient and environmentally friendly methods for catalytic dihydrogen production.

Article Abstract

Hydridic-to-protonic dihydrogen bonds (DHBs) are involved in comprehensive structural and energetic evolution, and significantly affect reactivity and selectivity in solution and solid states. Grand challenges exist in understanding DHBs' bonding nature and strength, and how to harness DHBs. Herein we launched a combined photoelectron spectroscopy and multiscale theoretical investigation using monohydrated -dodecaborate clusters BX ·HO (X = H, F, I) to address such challenges. For the first time, a consistent and unambiguous picture is unraveled demonstrating that B-H⋯H-O DHBs are superior to the conventional B-X⋯H-O HBs, being 1.15 and 4.61 kcal mol stronger than those with X = F and I, respectively. Energy decomposition analyses reveal that induction and dispersion terms make pronounced contributions resulting in a stronger B-H⋯H-O DHB. These findings call out more attention to the prominent roles of DHBs in water environments and pave the way for efficient and eco-friendly catalytic dihydrogen production based on optimized hydridic-to-protonic interactions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9430482PMC
http://dx.doi.org/10.1039/d2sc03986aDOI Listing

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