Magnetic edge states and coherent manipulation of graphene nanoribbons

被引:281
作者
Slota, Michael [1 ,2 ]
Keerthi, Ashok [3 ]
Myers, William K. [2 ]
Tretyakov, Evgeny [4 ]
Baumgarten, Martin [3 ]
Ardavan, Arzhang [2 ,5 ]
Sadeghi, Hatef [6 ]
Lambert, Colin J. [6 ]
Narita, Akimitsu [3 ]
Muellen, Klaus [3 ]
Bogani, Lapo [1 ,2 ]
机构
[1] Univ Oxford, Dept Mat, Oxford, England
[2] Univ Oxford, Ctr Adv ESR, Oxford, England
[3] Max Planck Inst Polymer Res, Mainz, Germany
[4] NN Vorozhtsov Novosibirsk Inst Organ Chem, Novosibirsk, Russia
[5] Univ Oxford, Clarendon Lab, Oxford, England
[6] Univ Lancaster, Phys Dept, Quantum Technol Ctr, Lancaster, England
基金
欧洲研究理事会; 英国工程与自然科学研究理事会;
关键词
COMPREHENSIVE SOFTWARE PACKAGE; SPIN QUBITS; EPR; SPECTROSCOPY; SIMULATION; DEVICES; DIAMOND; ZIGZAG; BAND;
D O I
10.1038/s41586-018-0154-7
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Graphene, a single-layer network of carbon atoms, has outstanding electrical and mechanical properties(1). Graphene ribbons with nanometre-scale widths(2,3) (nanoribbons) should exhibit half-metallicity(4) and quantum confinement. Magnetic edges in graphene nanoribbons(5,6) have been studied extensively from a theoretical standpoint because their coherent manipulation would be a milestone for spintronic(7) and quantum computing devices(8). However, experimental investigations have been hampered because nanoribbon edges cannot be produced with atomic precision and the graphene terminations that have been proposed are chemically unstable(9). Here we address both of these problems, by using molecular graphene nanoribbons functionalized with stable spin-bearing radical groups. We observe the predicted delocalized magnetic edge states and test theoretical models of the spin dynamics and spin-environment interactions. Comparison with a non-graphitized reference material enables us to clearly identify the characteristic behaviour of the radical-functionalized graphene nanoribbons. We quantify the parameters of spin-orbit coupling, define the interaction patterns and determine the spin decoherence channels. Even without any optimization, the spin coherence time is in the range of microseconds at room temperature, and we perform quantum inversion operations between edge and radical spins. Our approach provides a way of testing the theory of magnetism in graphene nanoribbons experimentally. The coherence times that we observe open up encouraging prospects for the use of magnetic nanoribbons in quantum spintronic devices.
引用
收藏
页码:691 / +
页数:6
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