• Photonics Insights
  • Vol. 3, Issue 1, R02 (2024)
Jianbin Zhang1、†, Hubiao Fang1, Pan Wang1、2, Wei Fang1、2, Lei Zhang1, Xin Guo1、2、*, and Limin Tong1、2、3、*
Author Affiliations
  • 1Interdisciplinary Center for Quantum Information, New Cornerstone Science Laboratory, State Key Laboratory of Extreme Photonics and Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou, China
  • 2Jiaxing Key Laboratory of Photonic Sensing & Intelligent Imaging, Intelligent Optics & Photonics Research Center, Jiaxing Research Institute Zhejiang University, Jiaxing, China
  • 3Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan, China
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    DOI: 10.3788/PI.2024.R02 Cite this Article Set citation alerts
    Jianbin Zhang, Hubiao Fang, Pan Wang, Wei Fang, Lei Zhang, Xin Guo, Limin Tong. Optical microfiber or nanofiber: a miniature fiber-optic platform for nanophotonics[J]. Photonics Insights, 2024, 3(1): R02 Copy Citation Text show less

    Abstract

    An optical micro/nanofiber (MNF) is a quasi-one-dimensional free-standing optical waveguide with a diameter close to or less than the vacuum wavelength of light. Combining the tiny geometry with high-refractive-index contrast between the core and the surrounding, the MNF exhibits favorable optical properties such as tight optical confinement, strong evanescent field, and large-diameter-dependent waveguide dispersion. Meanwhile, as a quasi-one-dimensional structure with extraordinarily high geometric and structural uniformity, the MNF also has low optical loss and high mechanical strength, making it favorable for manipulating light on the micro/nanoscale with high flexibility. Over the past two decades, optical MNFs, typically being operated in single mode, have been emerging as a miniaturized fiber-optic platform for both scientific research and technological applications. In this paper, we aim to provide a comprehensive overview of the representative advances in optical MNFs in recent years. Starting from the basic structures and fabrication techniques of the optical MNFs, we highlight linear and nonlinear optical and mechanical properties of the MNFs. Then, we introduce typical applications of optical MNFs from near-field optics, passive optical components, optical sensors, and optomechanics to fiber lasers and atom optics. Finally, we give a brief summary of the current status of MNF optics and technology, and provide an outlook into future challenges and opportunities.

    DT/2tanΩ2πβ1β2,

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    n(r)={n1,0<r<D/2n2,D/2r<},

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    (2+n2k2β2)e=0,(2+n2k2β2)h=0,

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    {Jv(U)UJv(U)+Kv(W)WKv(W)}{Jv(U)UJv(U)+n22Kv(W)n12WKv(W)}=(vβkn1)2(VUW)4;

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    J1(U)UJ0(U)+K1(W)WK0(W)=0;

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    n12J1(U)UJ0(U)+n22K1(W)WK0(W)=0,

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    U=D2(k2n12β2)12,W=D2(β2k2n22)12,

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    V=D2k(n12n22)12,

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    Sz=12(E×H*)·uz,

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    Sz,in=12(ε0μ0)12kn12βJ12(U)[a1a3J02(UR)+a2a4J22(UR)+1F1F22J0(UR)J2(UR)cos(2ϕ)],

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    Sz,out=12(ε0μ0)12kn12βK12(W)U2W2[a1a5K02(WR)+a2a6K22(WR)12ΔF1F22K0(WR)K2(WR)cos(2ϕ)],

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    a1=F212,a2=F2+12,a3=F112,a4=F1+12,a5=F11+2Δ2,a6=F1+12Δ2,F1=(UWV)2[b1+(12Δ)b2],F2=(VUW)21b1+b2,Δ=n1n2n1,b1=12U{J0(U)J1(U)J2(U)J1(U)},b2=12W{K0(W)K1(W)+K2(W)K1(W)}.

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    η=0D/202πSz,indA0D/202πSz,indA+D/202πSz,outdA,

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    Dw=d(vg1)dλ,

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    vg=cn12·βk·112Δ(1η).

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    P=ε0[χ(1)E+χ(2)E2+χ(3)E3+],

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    γ=n2ω0cAeff,

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    Aeff=(|E(x,y)|2dxdy)2|E(x,y)|4dxdy.

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    dA2dziρ2A12exp(iΔβz)=0,

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    ρ2=ω22A12dre2*·P(2)Redr[e2*×h2]z,

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    A1z=in2k[(J1|A1|2+2J2|A3|2)A1+J3A1*2A3eiδβz],A3z=in2k[(6J2|A1|2+3J5|A3|2)A3+J3*A13A3eiδβz],

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    σ=ζε,

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    σ=ζD2RB,

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    F=ST·nSdS,

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    Ti,j=ε0εrEiEj+μ0μrHiHj12δi,j(ε0εr|E|2+μ0μr|H|2),

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    Jianbin Zhang, Hubiao Fang, Pan Wang, Wei Fang, Lei Zhang, Xin Guo, Limin Tong. Optical microfiber or nanofiber: a miniature fiber-optic platform for nanophotonics[J]. Photonics Insights, 2024, 3(1): R02
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