The University of Tokyo · 물리·천문학
Zicong Xu 교수의 연구실은 양자광을 활용한 고감도 분자 진동 이미징 및 스펙트로스코피 기술 개발에 초점을 맞추고 있습니다. 특히 양자강화 자극 라만 산란(SRS)을 통해 촬영 속도와 감도를 동시에 향상시키는 기술적 혁신을 이끌고 있으며, 고출력 레이저와 양자 빛의 융합을 통해 생물의학 영상의 한계를 극복하고자 합니다. 또한, 고속 양자 통신 및 고해상도 분광 측정을 위한 초광대역 광원 기반의 양자 상태 생성 기술 연구도 진행 중입니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Quantum-enhanced stimulated Raman scattering (QE-SRS) is a promising technique for highly sensitive molecular vibrational imaging and spectroscopy surpassing the shot noise limit. However, the previous demonstrations of QE-SRS utilized rather weak optical power which hinders from competing with the sensitivity of state-of-the-art SRS microscopy and spectroscopy using relatively high-power optical pulses. Here, we demonstrate SRS spectroscopy with quantum-enhanced balanced detection (QE-BD) schem
In this paper, we propose an approach for implementing quantum-enhanced stimulated Raman scattering (QESRS) microscopy using a dual-polarization scheme. This approach has advantages for high-power operation and enables ultrasensitive Raman detection of molecular vibrational mode symmetry. To demonstrate the feasibility and effectiveness of our technique, we present both the theoretical framework and experimental results of dual-polarization QESRS. Our technique resulted in a noticeable reduction
Quantum-enhanced stimulated Raman scattering (QE-SRS) microscopy sits at the intersection of biomedical imaging, laser microscopy, and quantum optics toward realizing sensitive molecular-vibrational imaging. This Perspective explores the current status of this emerging field, integrating viewpoints from these diverse disciplines to highlight its potential for advancing biological and medical imaging. We discuss key challenges and future directions in leveraging quantum light to push the sensitiv
This paper proposes a temperature sensor based on temperature-frequency conversion using 180 nm CMOS technology. The temperature sensor consists of a proportional-to-absolute temperature (PTAT) current generating circuit, a relaxation oscillator with oscillation frequency proportional to temperature (OSC-PTAT), a relaxation oscillator with oscillation frequency independent of temperature (OSC-CON), and a divider circuit cascaded with D flip-flops. Using BJT as the temperature sensing module, the
Squeezed light has been applied in stimulated Raman scattering (SRS) spectroscopy [1] and microscopy [2] to break the shot-noise-limited sensitivity. The sub-shot-noise sensitivity achieved in quantum-enhanced SRS (QE-SRS) systems is advantageous for uncovering weak signals and achieving faster imaging speed, which attract the attention of biomedical scientists. To break the sensitivity of state-of-the-art SRS microscopes, the applied squeezed light power in QE-SRS systems should be high enough
We demonstrate photon-number squeezing via the optical Kerr effect in a standard polarization-maintaining fiber, driven by an ultrashort 10-fs Ti:Sapphire laser with a 68 THz bandwidth. A squeezing level of −0.86 dB was directly observed, corresponding to −1.12 dB after subtracting circuit noise. To our knowledge, this is the first report of squeezing generated by such an ultrabroadband source, highlighting its potential for high-speed quantum communication and quantum-enhanced spectroscopy and
We demonstrate the experimental realization of a high-power quantum-enhanced stimulated Raman scattering (QE-SRS) microscopy. By using a 25-mW squeezed light, we achieved 1.74±0.28 dB quantum enhancement in high-speed hyperspectral SRS imaging.
The relation between the chirp parameter and the temporal and spectral phases
In recent years, quantum technology has expanded its reach across a wide range of fields. Pulsed squeezing, in particular, holds significant promise for advancing quantum-enhanced nonlinear microscopy as well as high-speed quantum computing and communication. However, the performance of pulsed squeezing using the widely adopted Ti:sapphire laser has been rarely investigated, especially in the picosecond regime. Here, we report record-level picosecond pulsed squeezing of -4.41 dB generated with a
In recent years, quantum technology has expanded its reach across a wide range of fields. Pulsed squeezing, in particular, holds significant promise for advancing quantum-enhanced nonlinear microscopy as well as high-speed quantum computing and communication. However, the performance of pulsed squeezing using the widely adopted Ti:sapphire laser has been rarely investigated, especially in the picosecond regime. Here, we report record-level picosecond pulsed squeezing of -4.41 dB generated with a
We demonstrate the experimental realization of a high-power quantum-enhanced stimulated Raman scattering (QE-SRS) microscopy. By using a 25-mW squeezed light, we achieved 1.74±0.28 dB quantum enhancement in high-speed hyperspectral SRS imaging.
The relation between the chirp parameter and the temporal and spectral phases
We propose a method to measure the temporal phase of ultrashort pulsed squeezed vacuum. We verified that the temporal chirp has limited influence on pulsed squeezing level.
Benefitting from the sub-Poissonian statistics, squeezed light has been applied to push the shot-noise-limited sensitivity of stimulated Raman scattering spectroscopy and microscopy to a sub-shot-noise level [5]. However, the balanced detection regime requires a high squeezing level to counteract the 3-dB signal-to-noise ratio (SNR) drawback. In this presentation, we introduce dual-polarization quantum-enhanced stimulated Raman scattering (QESRS), which is also suitable for high-power operation