Optical control of TMDCs valley pseudospin qubits: Difference between revisions
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* The strategies and materials for building universal quantum computers are being actively researched, and various platforms for holding qubits have been proposed and tested<ref>Experimental perfect state transfer of an entangled photonic qubit[https://www.nature.com/articles/ncomms11339]</ref><ref>Superconducting Qubits: Current State of Play[https://www.annualreviews.org/doi/abs/10.1146/annurev-conmatphys-031119-050605]</ref><ref>Two-qubit entangling gates within arbitrarily long chains of trapped ions[https://journals.aps.org/pra/abstract/10.1103/PhysRevA.100.022332]</ref><ref>Digital Coherent Control of a Superconducting Qubit[https://journals.aps.org/prapplied/abstract/10.1103/PhysRevApplied.11.014009]</ref><ref>Fast quantum logic gates with trapped-ion qubits[https://www.nature.com/articles/nature25737]</ref>. Within all the options such as superconducting qubits and ion trap qubits, solid-state qubits have illustrated great benefits of the compatibility with the existing semiconductor technology, which attracts lots of attention to this platform. Moreover, because of the direct band gap and strong spin-orbit coupling discovered in the monolayer transition metal dichalcogenides (TMDCs), especially some semiconductor monolayers possess a sizeable direct bandgap of ≈1.5–2 eV in the optical range allowing electrostatic confinement and optical manipulation of carriers<ref>Atomically Thin MoS2: A New Direct-Gap Semiconductor[https://journals.aps.org/prl/abstract/10.1103/PhysRevLett.105.136805]</ref><ref>Emerging Photoluminescence in Monolayer MoS2[https://pubs.acs.org/doi/10.1021/nl903868w]</ref>, chances are TMDCs materials have the potential to become the promising platform for fabricating qubits. There are four main types of TMDCs that have been suggested as advantageous in acting qubits, <math>\text{WS}_2</math> , <math>\text{WSe}_2</math> , <math>\text{MoS}_2</math> and <math>\text{MoSe}_2</math> . Kormányos et al used DFT calculations to confirm that <math>\text{WS}_2</math> and <math>\text{WSe}_2</math> , are better than <math>\text{MoS}_2</math> and <math>\text{MoSe}_2</math> in terms of the spin-valley coupling<ref>Spin-Orbit Coupling, Quantum Dots, and Qubits in Monolayer Transition Metal Dichalcogenides[https://journals.aps.org/prx/abstract/10.1103/PhysRevX.4.011034]</ref>, which is really important since spin-valley coupling is regarded as a key factor that can improve the coherence lifetime of spin-valley states. | * The strategies and materials for building universal quantum computers are being actively researched, and various platforms for holding qubits have been proposed and tested<ref>Experimental perfect state transfer of an entangled photonic qubit[https://www.nature.com/articles/ncomms11339]</ref><ref>Superconducting Qubits: Current State of Play[https://www.annualreviews.org/doi/abs/10.1146/annurev-conmatphys-031119-050605]</ref><ref>Two-qubit entangling gates within arbitrarily long chains of trapped ions[https://journals.aps.org/pra/abstract/10.1103/PhysRevA.100.022332]</ref><ref>Digital Coherent Control of a Superconducting Qubit[https://journals.aps.org/prapplied/abstract/10.1103/PhysRevApplied.11.014009]</ref><ref>Fast quantum logic gates with trapped-ion qubits[https://www.nature.com/articles/nature25737]</ref>. Within all the options such as superconducting qubits and ion trap qubits, solid-state qubits have illustrated great benefits of the compatibility with the existing semiconductor technology, which attracts lots of attention to this platform. Moreover, because of the direct band gap and strong spin-orbit coupling discovered in the monolayer transition metal dichalcogenides (TMDCs), especially some semiconductor monolayers possess a sizeable direct bandgap of ≈1.5–2 eV in the optical range allowing electrostatic confinement and optical manipulation of carriers<ref>Atomically Thin MoS2: A New Direct-Gap Semiconductor[https://journals.aps.org/prl/abstract/10.1103/PhysRevLett.105.136805]</ref><ref>Emerging Photoluminescence in Monolayer MoS2[https://pubs.acs.org/doi/10.1021/nl903868w]</ref>, chances are TMDCs materials have the potential to become the promising platform for fabricating qubits. There are four main types of TMDCs that have been suggested as advantageous in acting qubits, <math>\text{WS}_2</math> , <math>\text{WSe}_2</math> , <math>\text{MoS}_2</math> and <math>\text{MoSe}_2</math> . Kormányos et al used DFT calculations to confirm that <math>\text{WS}_2</math> and <math>\text{WSe}_2</math> , are better than <math>\text{MoS}_2</math> and <math>\text{MoSe}_2</math> in terms of the spin-valley coupling<ref>Spin-Orbit Coupling, Quantum Dots, and Qubits in Monolayer Transition Metal Dichalcogenides[https://journals.aps.org/prx/abstract/10.1103/PhysRevX.4.011034]</ref>, which is really important since spin-valley coupling is regarded as a key factor that can improve the coherence lifetime of spin-valley states. | ||
* | * After we took a deeper look at the properties of TMDCs, some interesting features have been found. Such as an extra degree of freedom offered by valley magnetic moment, which can realise bit 0 and bit 1 in momentum space. In addition, these valleys are independently addressable by an optical signal, and optical controlling technique has been conducted theoretical research. As a result, as inspired by the idea from the paper<ref>Spin-valley qubit in nanostructures of monolayer semiconductors: Optical control and hyperfine interaction[https://journals.aps.org/prb/abstract/10.1103/PhysRevB.93.045313]</ref>, we intend to build a quantum simulator and investigate optical control of the spin-valley qubits. | ||
==Q & A== | ==Q & A== | ||
Revision as of 22:29, 16 March 2021
Linked project
- This project is conducted by the same people as 👉 Control over the atomic spins within certain molecules by NMR technique
Group members
- XU ZIZHOU
- Matric Number: A0229645W
- Email: zizhou_xu@u.nus.edu
- CHU WENHAO
Description
- The strategies and materials for building universal quantum computers are being actively researched, and various platforms for holding qubits have been proposed and tested[1][2][3][4][5]. Within all the options such as superconducting qubits and ion trap qubits, solid-state qubits have illustrated great benefits of the compatibility with the existing semiconductor technology, which attracts lots of attention to this platform. Moreover, because of the direct band gap and strong spin-orbit coupling discovered in the monolayer transition metal dichalcogenides (TMDCs), especially some semiconductor monolayers possess a sizeable direct bandgap of ≈1.5–2 eV in the optical range allowing electrostatic confinement and optical manipulation of carriers[6][7], chances are TMDCs materials have the potential to become the promising platform for fabricating qubits. There are four main types of TMDCs that have been suggested as advantageous in acting qubits, , , and . Kormányos et al used DFT calculations to confirm that and , are better than and in terms of the spin-valley coupling[8], which is really important since spin-valley coupling is regarded as a key factor that can improve the coherence lifetime of spin-valley states.
- After we took a deeper look at the properties of TMDCs, some interesting features have been found. Such as an extra degree of freedom offered by valley magnetic moment, which can realise bit 0 and bit 1 in momentum space. In addition, these valleys are independently addressable by an optical signal, and optical controlling technique has been conducted theoretical research. As a result, as inspired by the idea from the paper[9], we intend to build a quantum simulator and investigate optical control of the spin-valley qubits.
Q & A
What are K & K' points?

- K-points are sampling points of Brillouin zone in reciprocal lattice
Choose monolayer TMDCs materials or 2D heterostructure?
- There are four main carrier properties that optimal Opto-valleytronics should possess.
- long carrier lifetime
- long valley lifetime
- high valley polarization
- long valley coherence time
- By adopting 2D heterostructure TMDCs materials, we can create these conditions for building promising quantum platform. (eg. Due to the type II band alignment and weak hybridization of van der Waals heterostructure, the electron–hole layer separation, the electron–hole exchange interaction is greatly reduced, resulting in a long cryogenic lifetime (ns to s)and valley lifetime (~ 10 ns) of the interlayer exciton[10])
Method
Principle
Experimental setup
Quantum simulator
- We intend to use WSe2 2D heterostructure encapsulated in hexagonal boron nitride (h-BN) as the physical platform, and ...
Qubit initialisation
Qubit control
Qubit readout
Results
References
- ↑ Experimental perfect state transfer of an entangled photonic qubit[1]
- ↑ Superconducting Qubits: Current State of Play[2]
- ↑ Two-qubit entangling gates within arbitrarily long chains of trapped ions[3]
- ↑ Digital Coherent Control of a Superconducting Qubit[4]
- ↑ Fast quantum logic gates with trapped-ion qubits[5]
- ↑ Atomically Thin MoS2: A New Direct-Gap Semiconductor[6]
- ↑ Emerging Photoluminescence in Monolayer MoS2[7]
- ↑ Spin-Orbit Coupling, Quantum Dots, and Qubits in Monolayer Transition Metal Dichalcogenides[8]
- ↑ Spin-valley qubit in nanostructures of monolayer semiconductors: Optical control and hyperfine interaction[9]
- ↑ Opto-valleytronics in the 2D van der Waals heterostructure[10]