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量子弱值放大太赫兹手性光学测量

Quantum weak value amplified terahertz chiroptical measurement.

作者信息

Xu Liping, Xu Jiangtao, Yao Xin, Zhang Rumin, Wen Gang, Wang Lei, Lu Xingxing, Li Zaoxia, Liu Wenquan, Wei Dongshan, Li Xiaoli, Chang Tianying, Cui Hong-Liang

机构信息

The College of Nuclear Technology and Automation Engineering, Chengdu University of Technology, Chengdu, Sichuan 610059, China.

Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, Guangdong 518055, China.

出版信息

Nanophotonics. 2025 Apr 16;14(12):2133-2149. doi: 10.1515/nanoph-2024-0685. eCollection 2025 Jun.

Abstract

A precise method for phase and amplitude detection in both the time and frequency domains of terahertz spectroscopy based on the weak-value amplification technique is proposed and demonstrated. Within the weak-value amplification scheme, the imaginary weak value enhances variations in the terahertz phase signals, whereas the real weak value amplifies changes in the terahertz amplitude signals. By employing various postselections in the terahertz weak measurement procedure in detecting minute changes of the phase and amplitude of the terahertz wave, we achieved a phase change range from -0.0187 rad to 0.0183 rad with an interval of 0.004 rad and an amplitude change range from -0.0238 rad to 0.0228 rad with an interval of 0.0056 rad. This results in a phase and amplitude measurement resolution of 10 rad in the time domain. In the frequency domain, spectra are calculated to assess phase and amplitude variations with respect to frequency or wavelength. We apply these methods to chiral detection, particularly in measuring optical activity such as circular dichroism (CD) and optical rotatory dispersion (ORD). Despite challenges such as strong terahertz wave absorption in aqueous solutions and weak optical responses from natural chiral materials in the terahertz band, we successfully conducted chiroptical spectroscopy on a relatively large volume (2.3 mL) of liquid (R)- and (S)-limonene, as well as lactose tablets with varying mass fractions. Furthermore, the carrier-envelope phase (CEP) shift, defined for one- or few-cycle time-domain terahertz pulses, was effectively achieved through the manipulation of a pair of terahertz polarizers in the terahertz beam path. Notably, when = 0, a 150 % increase in the absorption coefficient of lactose was observed when weak measurement techniques were employed, compared to conditions without such measurements. This effort yielded THz-ORD and THz-CD spectra, demonstrating the potential of our methods to overcome traditional limitations and provide new insights into the optical response, dynamic properties, and low-frequency vibrational modes of biomolecules and materials in low-energy states, ultimately facilitating the identification of chiral stereoisomers.

摘要

提出并演示了一种基于弱值放大技术在太赫兹光谱的时域和频域中进行相位和幅度检测的精确方法。在弱值放大方案中,虚部弱值增强太赫兹相位信号的变化,而实部弱值放大太赫兹幅度信号的变化。通过在太赫兹弱测量过程中采用各种后选择来检测太赫兹波相位和幅度的微小变化,我们实现了相位变化范围从-0.0187弧度到0.0183弧度,间隔为0.004弧度,幅度变化范围从-0.0238弧度到0.0228弧度,间隔为0.0056弧度。这在时域中实现了10弧度的相位和幅度测量分辨率。在频域中,计算光谱以评估相对于频率或波长的相位和幅度变化。我们将这些方法应用于手性检测,特别是在测量圆二色性(CD)和旋光色散(ORD)等光学活性方面。尽管存在诸如水溶液中太赫兹波强烈吸收以及太赫兹波段天然手性材料的弱光学响应等挑战,但我们成功地对相对大量(2.3毫升)的液体(R)-和(S)-柠檬烯以及不同质量分数的乳糖片进行了手性光谱分析。此外,通过在太赫兹光束路径中操纵一对太赫兹偏振器,有效地实现了针对单周期或少数周期时域太赫兹脉冲定义的载波包络相位(CEP)偏移。值得注意的是,当 = 0时,与未进行此类测量的条件相比,采用弱测量技术时观察到乳糖的吸收系数增加了150%。这项工作产生了太赫兹-ORD和太赫兹-CD光谱,证明了我们的方法克服传统限制并为低能态生物分子和材料的光学响应、动态特性和低频振动模式提供新见解的潜力,最终有助于手性立体异构体的鉴定。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7969/12147555/9c085df47185/j_nanoph-2024-0685_fig_001.jpg

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