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Dinitrogen Coupling to a Terpyridine-Molybdenum Chromophore Is Switched on by Fermi Resonance

Producción científica: Articlerevisión exhaustiva

32 Citas (Scopus)

Resumen

The traditional view of a chemical change is inherently local and classical, and such a change relies on a mix of thermodynamic and kinetic parameters to control reactivity. Often, the thermodynamic stability of chemical bonds necessitates significant energy input for activation. One fundamental question is potentially transformative: can quantum mechanics enable selective bond activation? A possible approach involves strategic input of energy to reaction-specific vibrational levels. Toward this goal, our work describes the coupling of vibrational motions in a terpyridine-molybdenum complex hosting a nonreactive substrate—dinitrogen. Ultrafast coherence spectroscopies revealed a Fermi-resonance coupling mechanism connecting in-plane breathing motion of the light-harvesting terpyridines with the stretching motion of the spatially disparate dinitrogen bridge. Notably, the coupling is significantly enhanced in the photoexcited state. This Fermi resonance indicates an energy conduit that drives the two motions in sync and thereby amplifies vibrational energy exchange. Achieving selective bond activation by bridging vibrations could present a quantum-inspired design principle in synthetic chemistry.

Idioma originalEnglish
Páginas (desde-hasta)402-416
Número de páginas15
PublicaciónChem
Volumen5
N.º2
DOI
EstadoPublished - feb 14 2019

Nota bibliográfica

Publisher Copyright:
© 2018 Elsevier Inc.

Financiación

S.R. and G.D.S. acknowledge support from the Division of Chemical Sciences, Geosciences, and Biosciences of the US Department of Energy Basic Energy Sciences program through grant no. DE-SC0015429 . G.D.S. also acknowledges support from the W.M. Keck Foundation through award no. 1005586. M.J.B. and P.J.C. acknowledge support from the Basic Energy Sciences program of the US Department of Energy Office of Science ( DE-SC0006498 ). M.J.B. thanks the Natural Sciences and Engineering Research Council of Canada for a predoctoral fellowship (PGS-D) as well as Princeton University for an Edward C. Taylor Fellowship. S.R. thanks the Imaging and Analysis Center in PRISM at Princeton University for providing access to the Raman facility. S.R. and G.D.S. acknowledge support from the Division of Chemical Sciences, Geosciences, and Biosciences of the US Department of Energy Basic Energy Sciences program through grant no. DE-SC0015429. G.D.S. also acknowledges support from the W.M. Keck Foundation through award no. 1005586. M.J.B. and P.J.C. acknowledge support from the Basic Energy Sciences program of the US Department of Energy Office of Science (DE-SC0006498). M.J.B. thanks the Natural Sciences and Engineering Research Council of Canada for a predoctoral fellowship (PGS-D) as well as Princeton University for an Edward C. Taylor Fellowship. S.R. thanks the Imaging and Analysis Center in PRISM at Princeton University for providing access to the Raman facility.

FinanciadoresNúmero del financiador
US Department of Energy Office of Science
U.S. Department of Energy Oak Ridge National Laboratory U.S. Department of Energy National Science Foundation National Energy Research Scientific Computing CenterDE-SC0015429, DE-SC0006498
U.S. Department of Energy Oak Ridge National Laboratory U.S. Department of Energy National Science Foundation National Energy Research Scientific Computing Center
W. M. Keck Foundation1005586
W. M. Keck Foundation
DOE Basic Energy Sciences
Princeton University
Chemical Sciences, Geosciences, and Biosciences Division
Natural Sciences and Engineering Research Council of Canada

    ASJC Scopus subject areas

    • General Chemistry
    • Biochemistry
    • Environmental Chemistry
    • General Chemical Engineering
    • Biochemistry, medical
    • Materials Chemistry

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