Quantum Sensing of Electric Fields Using Spin-Correlated Radical Ion Pairs.
J Am Chem Soc
; 145(27): 14922-14931, 2023 Jul 12.
Article
em En
| MEDLINE
| ID: mdl-37364237
Quantum sensing affords the possibility of using quantum entanglement to probe electromagnetic fields with exquisite sensitivity. In this work, we show that a photogenerated spin-correlated radical ion pair (SCRP) can be used to sense an electric field change created at one radical ion of the pair using molecular recognition. The SCRP is generated within a covalent donor-chromophore-acceptor system PXX-PMI-NDI, 1, where PXX = peri-xanthenoxanthene, PMI = 1,6-bis(p-t-butylphenoxy)perylene-3,4-dicarboximide, and NDI = naphthalene-1,8:4,5-bis(dicarboximide). The electron-rich PXX donor in 1 acts as a guest molecule that can be encapsulated selectively by a tetracationic cyclophane ExBox4+ host to give a supramolecular complex 1 â ExBox4+. Selective photoexcitation of the PMI chromophore results in ultrafast generation of the PXXâ¢+-PMI-NDIâ¢- SCRP. When PXX is encapsulated by ExBox4+, the cyclophane generates an electric field that repels the positive charge on PXXâ¢+ within PXXâ¢+-PMI-NDIâ¢-, reducing the SCRP distance, i.e., the distance between the centers-of-charge on the donor and acceptor. Pulse-EPR measurements are used to measure the coherent oscillations created primarily by the electron-electron dipolar coupling in the SCRP, which yields the distance between the two charges (spins) of PXXâ¢+-PMI-NDIâ¢-. The experimental results show that the distance between PXXâ¢+ and NDIâ¢- decreases when ExBox4+ encapsulates PXXâ¢+, which demonstrates that the SCRP can function as a quantum sensor to detect electric field changes in the vicinity of the radical ions.
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Bases de dados:
MEDLINE
Idioma:
En
Revista:
J Am Chem Soc
Ano de publicação:
2023
Tipo de documento:
Article
País de afiliação:
Estados Unidos