Room-temperature quantum coherence of entangled multiexcitons in a metal-organic framework.

Yamauchi, Akio; Tanaka, Kentaro; Fuki, Masaaki; Fujiwara, Saiya; Kimizuka, Nobuo; Ryu, Tomohiro; Saigo, Masaki; Onda, Ken et al. · Sci Adv · 2024

basic_science · Level V

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Abstract

Singlet fission can generate an exchange-coupled quintet triplet pair state <sup>5</sup>TT, which could lead to the realization of quantum computing and quantum sensing using entangled multiple qubits even at room temperature. However, the observation of the quantum coherence of <sup>5</sup>TT has been limited to cryogenic temperatures, and the fundamental question is what kind of material design will enable its room-temperature quantum coherence. Here, we show that the quantum coherence of singlet fission-derived <sup>5</sup>TT in a chromophore-integrated metal-organic framework can be over hundred nanoseconds at room temperature. The suppressed motion of the chromophores in ordered domains within the metal-organic framework leads to the enough fluctuation of the exchange interaction necessary for <sup>5</sup>TT generation but, at the same time, does not cause severe <sup>5</sup>TT decoherence. Furthermore, the phase and amplitude of quantum beating depend on the molecular motion, opening the way to room-temperature molecular quantum computing based on multiple quantum gate control.