4.8 Article

Coherent Dynamics in Quantum Emitters under Dichromatic Excitation

Journal

PHYSICAL REVIEW LETTERS
Volume 126, Issue 4, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.126.047403

Keywords

-

Funding

  1. EPSRC [EP/L015110/1, EP/M013472/1, EP/P029892/1, EP/T01377X/1]
  2. ERC [725920]
  3. EU [820423]
  4. Royal Society
  5. Royal Academy of Engineering Chair in Emerging Technology
  6. Royal Society of Edinburgh
  7. Scottish Government
  8. Chongqing Research Program of Basic Research and Frontier Technology [cstc2016jcyjA0301]
  9. IITP Grant - Korea government (MSIT) [20190004340011001]
  10. EPSRC [EP/T01377X/1, EP/M013472/1, EP/P029892/1, EP/L017008/1] Funding Source: UKRI

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The study characterizes the coherent dynamics of a two-level quantum emitter under dichromatic excitation, showing that a higher population inversion can be achieved by adjusting the intensity ratio of the detuned pulses. Asymmetric dichromatic excitation can lead to coherent population control and higher inversion efficiency, offering a new perspective towards efficient, background-free photon generation and extraction.
We characterize the coherent dynamics of a two-level quantum emitter driven by a pair of symmetrically detuned phase-locked pulses. The promise of dichromatic excitation is to spectrally isolate the excitation laser from the quantum emission, enabling background-free photon extraction from the emitter. While excitation is not possible without spectral overlap between the exciting pulse and the quantum emitter transition for ideal two-level systems due to cancellation of the accumulated pulse area, we find that any additional interactions that interfere with cancellation of the accumulated pulse area may lead to a finite stationary population inversion. Our spectroscopic results of a solid-state two-level system show that, while coupling to lattice vibrations helps to improve the inversion efficiency up to 50% under symmetric driving, coherent population control and a larger amount of inversion are possible using asymmetric dichromatic excitation, which we achieve by adjusting the ratio of the intensities between the red- and blue-detuned pulses. Our measured results, supported by simulations using a real-time path-integral method, offer a new perspective toward realizing efficient, background-free photon generation and extraction.

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