Contents
2021
Volume: 19 Issue 2
15 Article(s)

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Reviews
Diffraction, Gratings, and Holography
Review of Fresnel incoherent correlation holography with linear and non-linear correlations [Invited] | On the Cover
Vijayakumar Anand, Tomas Katkus, Soon Hock Ng, and Saulius Juodkazis
Fresnel incoherent correlation holography (FINCH) is a well-established incoherent imaging technique. In FINCH, three self-interference holograms are recorded with calculated phase differences between the two interfering, differently modulated object waves and projected into a complex hologram. The object is reconstructed without the twin image and bias terms by a numerical Fresnel back propagation of the complex hologram. A modified approach to implement FINCH by a single camera shot by pre-calibrating the system involving recording of the point spread function library and reconstruction by a non-linear cross correlation has been introduced recently. The expression of the imaging characteristics from the modulation functions in original FINCH and the modified approach by pre-calibration in spatial and polarization multiplexing schemes are reviewed. The study reveals that a reconstructing function completely independent of the function of the phase mask is required for the faithful expression of the characteristics of the modulating function in image reconstruction. In the polarization multiplexing method by non-linear cross correlation, a partial expression was observed, while in the spatial multiplexing method by non-linear cross correlation, the imaging characteristics converged towards a uniform behavior.
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 020501 (2021)
Research Articles
Imaging Systems and Image Processing
Propagation-based incremental triangulation for multiple views 3D reconstruction
Wei Fang, Kui Yang, and Haiyuan Li
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 021101 (2021)
Color ghost imaging via sparsity constraint and non-local self-similarity
Pengwei Wang, Chenglong Wang, Cuiping Yu, Shuai Yue, Wenlin Gong, and Shensheng Han
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 021102 (2021)
Instrumentation, Measurement, and Optical Sensing
Spatially modulated polarimetry based on a vortex retarder and Fourier analysis
Chao Gao, and Bing Lei
We report a spatially modulated polarimetry scheme by using a zero-order vortex half-wave retarder (ZVHR) and a spatial Fourier analysis method. A ZVHR is employed to analyze the input polarized light and convert it into a vectorial optical field, and an analyzer is set after the ZVHR to form an hourglass intensity pattern due to the spatial polarization modulation. Then, the input light’s Stokes parameters can be calculated by spatial Fourier analysis of the hourglass pattern with a single shot. The working principle of the polarimeter has been analyzed by the Stokes–Mueller formalism, and some quantitative measuring experiments of different polarization states have been demonstrated. The experimental results indicate that the proposed polarimeter is accurate, robust, and simple to use.
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 021201 (2021)
Integrated Optics
Multi-gigahertz laser generation based on monolithic ridge waveguide and embedded copper nanoparticles | Editors' Pick
Chi Pang, Rang Li, Ziqi Li, Ningning Dong, Jun Wang, Feng Ren, and Feng Chen
Copper (Cu) nanoparticles (NPs) are synthesized under the near-surface region of the Nd:Y3Al5O12 (Nd:YAG) crystal by direct Cu+ ions implantation. Subsequently, the monolithic ridge waveguide with embedded Cu NPs is fabricated by C4+ ions irradiation and diamond saw dicing. The nonlinear optical response of the sample is investigated by the Z-scan technique, and pronounced saturable absorption is observed at the 1030 nm femtosecond laser. Based on the obvious saturable absorption of Cu NPs embedded Nd:YAG crystal, 1 μm monolithic mode-locked pulsed waveguide laser is implemented by evanescent field interaction between NPs and waveguide modes, reaching the pulse duration of 24.8 ps and repetition rate of 7.8 GHz. The work combines waveguides with NPs, achieving pulsed laser devices based on monolithic waveguide chips.
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 021301 (2021)
Lasers, Optical Amplifiers, and Laser Optics
Self-polarization emission based on coherent combination of intracavity eigenmodes in Nd:YAG/Cr4+:YAG lasers
Kaifei Tang, Wenbin Liao, Da Lin, Bingxuan Li, Weidong Chen, and Ge Zhang
The behavior of self-polarization emission in Nd:Y3Al5O12(YAG)/Cr4+:YAG lasers has been proved in some cases. However, the degree and direction of polarization were often sensitive and unstable. We experimentally observed different beam profiles versus the angle of the polarizer relative to the polarization direction of the laser. In order to explore the polarization mechanism, the dynamics of intracavity polarized eigenmodes was analyzed theoretically. Simulative results were well consistent with our experimental observations. It indicated that the linear self-polarization emission was a composite state rather than an intrinsic state. This study contributed to the improvement of the polarization stability in Nd:YAG/Cr4+:YAG passively Q-switched lasers.
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 021401 (2021)
Statistical properties of Er/Yb co-doped random Rayleigh feedback fiber laser
Han Wu, Bing Han, Zinan Wang, and Houkun Liang
In this Letter, we experimentally investigate fast temporal intensity dynamics and statistical properties of the cladding-pumped Er/Yb co-doped random Rayleigh feedback fiber laser (EYRFL) for the first time, to the best of our knowledge. By using the optical spectral filtering method, strong and fast intensity fluctuations with the generation of extreme events are revealed at the output of EYRFL. The statistics of the intensity fluctuations strongly depends on the wavelength of the filtered radiation, and the intensity probability density function (PDF) with a heavy tail is observed in the far wings of the spectrum. We also find that the PDF of the intensity in the central part of the spectrum deviates from the exponential distribution and has the dependence on the laser operating regimes, which indicates some correlations among different frequency components exist in the EYRFL radiation and may play an important role in the random lasing spectrum stabilization process.
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 021402 (2021)
7 kHz sub-nanosecond microchip laser amplified by a grazing incidence double pass slab amplifier
Xu Liu, Chaoyong Tan, Yong Cheng, Jingsong Wei, Mengzhen Zhu, Xia Chen, and Chaowei Mi
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 021403 (2021)
Nanophotonics, Metamaterials, and Plasmonics
Doublet achromatic metalens for broadband optical retroreflector | Editors' Pick
Ming Deng, Tangxuan Ren, Jian Wang, and Lin Chen
A retroreflector that reflects light along its incident direction has found numerous applications in photonics, but the available metasurface schemes suffer from the issue of narrow bandwidth and/or a single angle of incidence. Here, a retroreflector using double layers of achromatic gradient metasurfaces is reported, which can realize retroreflection over a continuous range of incidence angles within a wide spectral band. The first metasurface serves as a transmissive achromatic lens that performs a broadband spatial Fourier transform and its inverse, while the second metasurface works as a reflective achromatic lens that undergoes wavelength- and position-dependent phase dispersions. Using this design strategy, a near-infrared retroreflector comprised of silicon nanopillars with the cross sections of square pillars and square holes is numerically demonstrated, providing a high-performance retroreflection for polarization-independent incident light waves over a continuous range of incidence angles from 0° to 16° within an extremely broad wavelength range between 1.35 and 1.95 μm. The scheme herein can offer a design strategy of broadband retroreflectors and impact numerous photonics applications.
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 023601 (2021)
Nonlinear Optics
Optical Materials
Empowering perovskite PbTiO3 nanoparticles with enhanced up-conversion luminescence and thermal sensitivity by introducing Er3+ dopant | Editors' Pick
Jing Zhu, Shiqing Xu, Lei Lei, Feifei Huang, and Zhen Xiao
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 021601 (2021)
Highly transparent ceramics for the spectral range from 1.0 to 60.0 µm based on solid solutions of the system AgBr–AgI–TlI–TlBr
L. V. Zhukova, D. D. Salimgareev, A. E. Lvov, A. A. Yuzhakova, A. S. Korsakov, D. A. Belousov, K. V. Lipustin, and V. M. Kondrashin
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 021602 (2021)
Physical Optics
Experimental and theoretical study of linearly polarized Lorentz–Gauss beams with heterogeneous distribution
Guanxue Wang, Yu Miao, Yang Li, Xinzhi Shan, and Xiumin Gao
The unevenly distributed Lorentz–Gaussian beams are difficult to reproduce in practice, because they require modulation in both amplitude and phase terms. Here, a new linearly polarized Lorentz–Gauss beam modulated by a helical axicon (LGB-HA) is calculated, and the two various experimental generation methods of this beam, Fourier transform method (FTM) and complex-amplitude modulation (CAM) method, are depicted. Compared with the FTM, the CAM method can modulate the phase and amplitude simultaneously by only one reflection-type phase-only liquid crystal spatial light modulator. Both of the methods are coincident with the numerical results. Yet CAM is simpler, efficient, and has a higher degree of conformance through data comparison. In addition, considering some barriers exist in shaping and reappearing the complicated Lorentz–Gauss beam with heterogeneous distribution, the evolution regularities of the beams with different parameters (axial parameter, topological charge, and phase factor) were also implemented.
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 022602 (2021)
Estimating topological charge of propagating vortex from single-shot non-imaged speckle
Li Chen, Rakesh Kumar Singh, Aristide Dogariu, Ziyang Chen, and Jixiong Pu
Encoding information using the topological charge of vortex beams has been proposed for optical communications. The conservation of the topological charge on propagation and the detection of the topological charge by a receiver are significant in these applications and have been well established in free-space. However, when vortex beams enter a diffuser, the wavefront is distorted, leading to a challenge in the conservation and detection of the topological charge. Here, we present a technique to measure the value of the topological charge of a vortex beam obscured in the randomly scattered light. The results of the numerical simulations and experiments are presented and are in good agreement. In particular, only a single-shot measurement is required to detect the topological charge of vortex beams, indicating that the method is applicable to a dynamic diffuser.
Chinese Optics Letters
  • Publication Date: Feb. 10, 2021
  • Vol. 19, Issue 2, 022603 (2021)

About the Cover

Schematic of the generation of twin axial images and their self-interference hologram by a randomly multiplexed diffractive lens in Fresnel incoherent correlation holography.