» Articles » PMID: 35774181

Chemical Control of Spin-lattice Relaxation to Discover a Room Temperature Molecular Qubit

Overview
Journal Chem Sci
Specialty Chemistry
Date 2022 Jul 1
PMID 35774181
Authors
Affiliations
Soon will be listed here.
Abstract

The second quantum revolution harnesses exquisite quantum control for a slate of diverse applications including sensing, communication, and computation. Of the many candidates for building quantum systems, molecules offer both tunability and specificity, but the principles to enable high temperature operation are not well established. Spin-lattice relaxation, represented by the time constant , is the primary factor dictating the high temperature performance of quantum bits (qubits), and serves as the upper limit on qubit coherence times ( ). For molecular qubits at elevated temperatures (>100 K), molecular vibrations facilitate rapid spin-lattice relaxation which limits to well below operational minimums for certain quantum technologies. Here we identify the effects of controlling orbital angular momentum through metal coordination geometry and ligand rigidity π-conjugation on relaxation in three four-coordinate Cu = ½ qubit candidates: bis(,'-dimethyl-4-amino-3-penten-2-imine) copper(ii) (MeNac) (1), bis(acetylacetone)ethylenediamine copper(ii) Cu(acacen) (2), and tetramethyltetraazaannulene copper(ii) Cu(tmtaa) (3). We obtain significant improvement upon changing from tetrahedral to square planar geometries through changes in orbital angular momentum. is further improved with greater π-conjugation in the ligand framework. Our electronic structure calculations reveal that the reduced motion of low energy vibrations in the primary coordination sphere slows relaxation and increases . These principles enable us to report a new molecular qubit candidate with room temperature = 0.43 μs, and establishes guidelines for designing novel qubit candidates operating above 100 K.

Citing Articles

Electronically Perturbed Vibrational Excitations of the Luminescing Stable Blatter Radical.

Bar-David J, Daaoub A, Chen S, Sibug-Torres S, Rocchetti S, Kang G ACS Nano. 2025; 19(8):7650-7660.

PMID: 39981951 PMC: 11887450. DOI: 10.1021/acsnano.4c09661.


The role of electronic excited states in the spin-lattice relaxation of spin-1/2 molecules.

Mariano L, Nguyen V, Petersen J, Bjornsson M, Bendix J, Eaton G Sci Adv. 2025; 11(7):eadr0168.

PMID: 39937899 PMC: 11817928. DOI: 10.1126/sciadv.adr0168.


Enhancing the Optically Detected Magnetic Resonance Signal of Organic Molecular Qubits.

Poh Y, Yuen-Zhou J ACS Cent Sci. 2025; 11(1):116-126.

PMID: 39866710 PMC: 11758272. DOI: 10.1021/acscentsci.4c01632.


Probing the Design Rules for Optimizing Electron Spin Relaxation in Densely Packed Triplet Media for Quantum Applications.

Attwood M, Li Y, Nevjestic I, Diggle P, Collauto A, Betala M ACS Mater Lett. 2025; 7(1):286-294.

PMID: 39790740 PMC: 11707738. DOI: 10.1021/acsmaterialslett.4c01465.


A Spectrochemical Series for Electron Spin Relaxation.

Kazmierczak N, Xia K, Sutcliffe E, Aalto J, Hadt R J Am Chem Soc. 2025; 147(3):2849-2859.

PMID: 39778145 PMC: 11760167. DOI: 10.1021/jacs.4c16571.


References
1.
Park K, Marshall W . Remarkably volatile copper(II) complexes of N,N'-unsymmetrically substituted 1,3-diketimines as precursors for Cu metal deposition via CVD or ALD. J Am Chem Soc. 2005; 127(26):9330-1. DOI: 10.1021/ja051158s. View

2.
Fielding A, Fox S, Millhauser G, Chattopadhyay M, Kroneck P, Fritz G . Electron spin relaxation of copper(II) complexes in glassy solution between 10 and 120 K. J Magn Reson. 2005; 179(1):92-104. PMC: 2919208. DOI: 10.1016/j.jmr.2005.11.011. View

3.
Escalera-Moreno L, Suaud N, Gaita-Arino A, Coronado E . Determining Key Local Vibrations in the Relaxation of Molecular Spin Qubits and Single-Molecule Magnets. J Phys Chem Lett. 2017; 8(7):1695-1700. DOI: 10.1021/acs.jpclett.7b00479. View

4.
Perunicic V, Hill C, Hall L, Hollenberg L . A quantum spin-probe molecular microscope. Nat Commun. 2016; 7:12667. PMC: 5062573. DOI: 10.1038/ncomms12667. View

5.
Morton J, Bertet P . Storing quantum information in spins and high-sensitivity ESR. J Magn Reson. 2018; 287:128-139. DOI: 10.1016/j.jmr.2017.11.015. View