THz quantum gap: exploring potential approaches for generating and detecting non-classical states of THz light

被引:6
|
作者
Todorov, Yanko [1 ]
Dhillon, Sukhdeep [1 ]
Mangeney, Juliette [1 ]
机构
[1] Sorbonne Univ, Univ PSL, Univ Paris Cite, Lab Phys Ecole Normale Super,ENS,CNRS,Univ Paris D, F-75005 Paris, France
关键词
terahertz; quantum technology; light-matter interaction; nanostructures; SINGLE-PHOTON DETECTOR; SQUEEZED STATES; TERAHERTZ; FIELD; CAVITY; SPECTROSCOPY; TRANSITIONS; RADIATION; DYNAMICS; MOLECULE;
D O I
10.1515/nanoph-2023-0757
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Over the past few decades, THz technology has made considerable progress, evidenced by the performance of current THz sources and detectors, as well as the emergence of several THz applications. However, in the realm of quantum technologies, the THz spectral domain is still in its infancy, unlike neighboring spectral domains that have flourished in recent years. Notably, in the microwave domain, superconducting qubits currently serve as the core of quantum computers, while quantum cryptography protocols have been successfully demonstrated in the visible and telecommunications domains through satellite links. The THz domain has lagged behind in these impressive advancements. Today, the current gap in the THz domain clearly concerns quantum technologies. Nonetheless, the emergence of quantum technologies operating at THz frequencies will potentially have a significant impact. Indeed, THz radiation holds significant promise for wireless communications with ultimate security owing to its low sensitivity to atmospheric disturbances. Moreover, it has the potential to raise the operating temperature of solid-state qubits, effectively addressing existing scalability issues. In addition, THz radiation can manipulate the quantum states of molecules, which are recognized as new platforms for quantum computation and simulation with long range interactions. Finally, its ability to penetrate generally opaque materials or its resistance to Rayleigh scattering are very appealing features for quantum sensing. In this perspective, we will discuss potential approaches that offer exciting prospects for generating and detecting non-classical states of THz light, thereby opening doors to significant breakthroughs in THz quantum technologies.
引用
收藏
页码:1681 / 1691
页数:11
相关论文
共 50 条
  • [21] Advances in quantum dots for classical and non-classical light sources Invited Paper
    Yasuhiko Arakawa
    Satoshi Iwamoto
    Satoshi Kako
    Masahiro Nomura
    Denis Guimard
    Chinese Optics Letters, 2008, (10) : 718 - 723
  • [22] Generation of non-classical photon states in superconducting quantum metamaterials
    Mukhin, S. I.
    Fistul, M. V.
    SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2013, 26 (08):
  • [23] Deterministic preparation of highly non-classical macroscopic quantum states
    Latmiral, Ludovico
    Mintert, Florian
    NPJ QUANTUM INFORMATION, 2018, 4
  • [24] Deterministic preparation of highly non-classical macroscopic quantum states
    Ludovico Latmiral
    Florian Mintert
    npj Quantum Information, 4
  • [25] Non-classical photonic spin texture of quantum structured light
    Yang, Li-Ping
    Jacob, Zubin
    COMMUNICATIONS PHYSICS, 2021, 4 (01)
  • [26] Generation of Non-Classical Light Using Semiconductor Quantum Dots
    Trivedi, Rahul
    Fischer, Kevin A.
    Vuckovic, Jelena
    Mueller, Kai
    ADVANCED QUANTUM TECHNOLOGIES, 2020, 3 (01)
  • [27] Non-classical photonic spin texture of quantum structured light
    Li-Ping Yang
    Zubin Jacob
    Communications Physics, 4
  • [28] Non-classical role of potential energy in adiabatic quantum annealing
    Das, Arnab
    INTERNATIONAL WORKSHOP ON STATISTICAL-MECHANICAL INFORMATICS 2008 (IW-SMI 2008), 2009, 143
  • [29] Sampling quantum states via heterodyne measurements with non-classical probe states
    Fischer, DG
    Freyberger, M
    OPTICS COMMUNICATIONS, 1999, 159 (1-3) : 158 - 168
  • [30] Generating non-classical states from spin coherent states via interaction with ancillary spins
    Dooley, Shane
    Joo, Jaewoo
    Proctor, Timothy
    Spiller, Timothy P.
    OPTICS COMMUNICATIONS, 2015, 337 : 71 - 78