Room-Temperature Optical Spin Polarization of an Electron Spin Qudit in a Vanadyl-Free Base Porphyrin Dimer
Оптическая спин-поляризация при комнатной температуре электронного спинового квдита в димере порфирина без ванадила
2024-12-16
SCID: 54.1/8mb5e9uw
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optical spin polarizationoxovanadium(IV) porphyrin–free-base porphyrin dimerphotoinduced triplet statestime-resolved electron paramagnetic resonance (TREPR)
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Abstract (AI)
High Resolution Image Download MS PowerPoint Slide Photoexcited organic chromophores appended to molecular qubits can serve as a source of spin initialization or multilevel qudit generation for quantum information applications. So far, this approach has been primarily investigated in chromophore–stable radical systems. Here, we extend this concept to a meso-meso linked oxovanadium(IV) porphyrin–free-base porphyrin dimer. Femtosecond transient absorption experiments reveal that photoexcitation of the free-base porphyrin leads to picosecond triplet state formation via enhanced intersystem crossing. Time-resolved electron paramagnetic resonance (TREPR) experiments carried out at both 85 K and room temperature reveal the formation of a long-lived spin-polarized quartet state through triplet–doublet spin mixing. Notably, a distinct hyperfine structure arising from the interaction between the electron spin quartet state and the vanadyl nucleus ( 51 V, I = 7/2) is evident, with the quartet state showing long-lived spin polarization even at room temperature. Theoretical simulations of the TREPR spectra confirm the photogenerated quartet state and provide insights into the non-Boltzmann spin populations. Exploiting this phenomenon affords the possibility of using photoinduced triplet states in porphyrins for quantum information as a resource to polarize and magnetically couple molecular electronic or nuclear spin qubits and qudits.
Key Findings
1
Photoexcitation of the free-base porphyrin in a meso-meso linked oxovanadium(IV) porphyrin–free-base porphyrin dimer produces picosecond triplet state formation via enhanced intersystem crossing.
2
The photogenerated quartet state shows long-lived spin polarization even at room temperature, enabling room-temperature optical spin polarization of an electron spin qudit.
3
The quartet state exhibits a distinct hyperfine structure from interaction with the vanadyl nucleus (51V, I = 7/2), demonstrating coupling between the electron spin quartet and the vanadium nucleus.
4
Theoretical simulations of TREPR spectra confirm the quartet assignment and reveal non-Boltzmann spin populations, supporting the mechanistic picture and potential for qudit polarization and magnetic coupling for quantum information applications.
5
Time-resolved EPR (TREPR) at 85 K and room temperature detects a long-lived spin-polarized quartet state formed through triplet–doublet spin mixing.
Research Object
Meso–meso linked oxovanadium(IV) porphyrin–free-base porphyrin dimer (vanadyl–free-base porphyrin dimer)
Research Subject
Photoinduced generation and room-temperature long-lived spin polarization of an electron spin quartet (spin qudit) via triplet–doublet spin mixing, including hyperfine interaction with the 51V nucleus, characterized by femtosecond transient absorption and time-resolved EPR
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2024-12-16
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References available in scid.ai5
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