The time-window for processing electron spin information (spintronics) in solid-state quantum electronic devices is determined by the spin–lattice and spin–spin relaxation times of electrons. Minimizing the effects of spin–orbit coupling and the local magnetic contributions of neighbouring atoms on spin–lattice and spin–spin relaxation times at room temperature remain substantial challenges to practical spintronics. Here we report conduction electron spin–lattice and spin–spin relaxation times of 175 ns at 300 K in 37±7 nm carbon spheres, which is remarkably long for any conducting solid- state material of comparable size. Following the observation of spin polarization by electron spin resonance, we control the quantum state of the...
単一NVダイヤモンド量子センサで世界最高感度を実現 --合成n型ダイヤモンドにより室温での世界最長T2--. 京都大学プレスリリース. 2019-09-02.Ultra-sensitive senso...
The understanding of spin dynamics and relaxation mechanisms in clean graphene, and the upper time a...
The scope of this thesis is the coherence of spins in carbon-based nanodevices. The motivation for t...
The time-window for processing electron spin information (spintronics) in solid-state quantum electr...
Certain computational tasks can be efficiently implemented using quantum logic, in which the informa...
Graphite has been intensively studied, yet its electron spins dynamics remains an unresolved problem...
Using X-band pulsed electron-spin resonance, we report the intrinsic spin-lattice (T1) and phase-coh...
We report on an example of confined magnetic ions with long spin coherence near room temperature. Th...
We report on an example of confined magnetic ions with long spin coherence near room temperature. Th...
We report on an example of confined magnetic ions with long spin coherence near room temperature. Th...
We report on an example of confined magnetic ions with long spin coherence near room temperature. Th...
We report on the spin-lattice interaction and coherent manipulation of electron spins in Mn-doped co...
We report on the spin-lattice interaction and coherent manipulation of electron spins in Mn-doped co...
Using X-band pulsed electron-spin resonance, we report the intrinsic spin-lattice (T1) and phase-coh...
Using X-band pulsed electron-spin resonance, we report the intrinsic spin-lattice (T1) and phase-coh...
単一NVダイヤモンド量子センサで世界最高感度を実現 --合成n型ダイヤモンドにより室温での世界最長T2--. 京都大学プレスリリース. 2019-09-02.Ultra-sensitive senso...
The understanding of spin dynamics and relaxation mechanisms in clean graphene, and the upper time a...
The scope of this thesis is the coherence of spins in carbon-based nanodevices. The motivation for t...
The time-window for processing electron spin information (spintronics) in solid-state quantum electr...
Certain computational tasks can be efficiently implemented using quantum logic, in which the informa...
Graphite has been intensively studied, yet its electron spins dynamics remains an unresolved problem...
Using X-band pulsed electron-spin resonance, we report the intrinsic spin-lattice (T1) and phase-coh...
We report on an example of confined magnetic ions with long spin coherence near room temperature. Th...
We report on an example of confined magnetic ions with long spin coherence near room temperature. Th...
We report on an example of confined magnetic ions with long spin coherence near room temperature. Th...
We report on an example of confined magnetic ions with long spin coherence near room temperature. Th...
We report on the spin-lattice interaction and coherent manipulation of electron spins in Mn-doped co...
We report on the spin-lattice interaction and coherent manipulation of electron spins in Mn-doped co...
Using X-band pulsed electron-spin resonance, we report the intrinsic spin-lattice (T1) and phase-coh...
Using X-band pulsed electron-spin resonance, we report the intrinsic spin-lattice (T1) and phase-coh...
単一NVダイヤモンド量子センサで世界最高感度を実現 --合成n型ダイヤモンドにより室温での世界最長T2--. 京都大学プレスリリース. 2019-09-02.Ultra-sensitive senso...
The understanding of spin dynamics and relaxation mechanisms in clean graphene, and the upper time a...
The scope of this thesis is the coherence of spins in carbon-based nanodevices. The motivation for t...