Tianbao Yu
Nanchang University
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Publication
Featured researches published by Tianbao Yu.
Journal of Optics | 2007
Tianbao Yu; Minghua Wang; Xiaoqing Jiang; Qinghua Liao; Jianyi Yang
Three single-mode photonic crystal waveguides (PCWs) are put together closely to construct three PCWs directional coupler (3PCWDC). It is found that the coupling coefficient of two even modes excited by the input field symmetrically entering 3PCWDC may be increased dramatically by reducing the size scales of dielectric rods between the neighbouring PCWs. The coupling length in this structure can be much shorter than that in conventional PCWs within the frequency range of interest. The application of this feature to an ultracompact, wide bandwidth and high-transmission power splitter is addressed. The simulation results by using the finite-difference time-domain method show that the structure exhibits new interesting characteristics.
Journal of Physics D | 2008
Tianbao Yu; Haifeng Zhou; Zhao Gong; Jianyi Yang; Xiaoqing Jiang; Minghua Wang
Ultracompact 1 × N (N > 2) beam splitters based on coupling of multiple photonic crystal waveguides (PCWs) are numerically demonstrated. The operation of the devices is on the basis of the self-imaging phenomenon. Variation of the effective index of modified rods induces the transverse redistribution of the N-fold images with the same coupling length, and uniform or free splitting can be achieved. The devices with three and four output channels are discussed in details as examples. Results show that this kind of beam splitters are very short. At the operating wavelength of 1.55 µm, the splitting length of the devices is only 35 µm even if the output channel number reaches 20. It provides a new method and a compact model to export freely the beam to N channels in PCW devices and can find practical applications in future photonic integrated circuits.
Chinese Physics Letters | 2011
Xuan Zhang; Shu-Wen Chen; Qinghua Liao; Tianbao Yu; Nian-Hua Liu; Yongzhen Huang
We propose and analyze a novel ultra-compact polarization beam splitter based on a resonator cavity in a two-dimensional photonic crystal. The two polarizations can be separated efficiently by the strong coupling between the microcavities and the waveguides occurring around the resonant frequency of the cavities. The transmittance of two polarized light around 1.55 μm can be more than 98.6%, and the size of the device is less than 15 μm×13 μm, so these features will play an important role in future integrated optical circuits.
Journal of Lightwave Technology | 2008
Haifeng Zhou; Xiaoqing Jiang; Jianyi Yang; Qiang Zhou; Tianbao Yu; Minghua Wang; T. Yu
By implanting nonreciprocal phase shifts (NPS) into a ring-coupled Mach-Zehnder interferometer (RCMZI) structure, wavelength-selective isolation can be obtained over a wideband range. Different transmission lineshapes and structures of the nonreciprocal RCMZI were examined to meet the requirements of multiwavelength usage. It was demonstrated that a multiwavelength isolation with wideband and high-peak isolation could be achieved with just a reciprocal ring-coupled arm and a nonreciprocal linear arm in a MZI structure. For 5% ring loss per loop, the ring power coupling ratio kappa has a tolerance of 0.06 to keep the 30-dB isolation band wider than 0.3 × FSR. Also, an isolator over C-band was designed to verify the feasibility and discuss the wavelength-dependence issues.
Optics Express | 2016
Tianbao Yu; Zhong Wang; Wen-Xing Liu; Tong-Biao Wang; Nian-Hua Liu; Qinghua Liao
We report numerically large and complete photonic and phononic band gaps that simultaneously exist in eight-fold phoxonic quasicrystals (PhXQCs). PhXQCs can possess simultaneous photonic and phononic band gaps over a wide range of geometric parameters. Abundant localized modes can be achieved in defect-free PhXQCs for all photonic and phononic polarizations. These defect-free localized modes exhibit multiform spatial distributions and can confine simultaneously electromagnetic and elastic waves in a large area, thereby providing rich selectivity and enlarging the interaction space of optical and elastic waves. The simulated results based on finite element method show that quasiperiodic structures formed of both solid rods in air and holes in solid materials can simultaneously confine and tailor electromagnetic and elastic waves; these structures showed advantages over the periodic counterparts.
Modern Physics Letters B | 2011
Hao Guo; Qinghua Liao; Tianbao Yu; Shu-Wen Chen; Yongzhen Huang
We present the design and simulation of an ultracompact high efficiency beam splitter based on propagation properties of the light waves in waveguide and cavity resonator. The splitting properties of the beam splitter have been numerically simulated and analyzed using the plane wave expansion (PWE) method and finite difference time domain (FDTD) method. Then in order to minimize backward reflections and to obtain equal distribution of power, we placed a cavity resonator waveguides to optimize the devices. It is shown that a beam splitter with high efficiency and large separating angle for TM mode can be achieved. There is no doubt that these excellent features will provide the structure a promising applying prospect for photonic integrated circuit.
Applied Optics | 2010
Tianbao Yu; Jiehui Huang; Nian-Hua Liu; Jianyi Yang; Qinghua Liao; Xiaoqing Jiang
We propose and simulate a new kind of compact polarizing beam splitter (PBS) based on a photonic crystal ring resonator (PCRR) with complete photonic bandgaps. The two polarized states are separated far enough by resonant and nonresonant coupling between the waveguide modes and the microring modes. Some defect holes are utilized to control the beam propagation. The simulated results obtained by the finite-difference time-domain method show that high transmission (over 95%) is obtained and the polarization separation is realized with a length as short as 3.1 microm. The design of the proposed PBS can be flexible, thanks to the advantages of PCRRs.
IEEE Photonics Technology Letters | 2013
Tianbao Yu; Sizhong Li; Nian-Hua Liu; Tongbiao Wang; Qinghua Liao; Xuming Xu
Connecting inner and surface propagation field in photonic crystal waveguides (PCWs) with an efficient method is critical to achieve flexible designs and applications in photonic integrated circuits. This letter realizes highly efficient coupling between inner and surface PCWs by modifying the structures of waveguides and interface. The aim of the modification is to achieve a good match of modal field profiles between different types of waveguide structures as well as suppress the reflected field at the interface. The numerical results based on finite difference time-domain simulations show that the bandwidth for coupling efficiency larger than 90% can be as broad as over 100 nm.
Modern Physics Letters B | 2017
Yao Li; Chao-Jie Zhang; Tongbiao Wang; Jiang-Tao Liu; Tianbao Yu; Qinghua Liao; Nian-Hua Liu
We studied the electromagnetic local density of state (EM-LDOS) near the surface of a one-dimensional multilayer structure (1DMS) alternately stacked by SiC and Si. EM-LDOS of a semi-infinite bulk appears two intrinsic peaks due to the resonance of surface phonon-polariton (SPhP) in SiC. In contrast with that of SiC bulk, SPhP can exist at the interface of SiC and Si for the 1DMS. The SPhPs from different interfaces can couple together, which can lead to a significant modulation of EM-LDOS. When the component widths of 1DMS are large, the spectrum of EM-LDOS exhibits oscillation behavior in the frequency regime larger than the resonance frequency of SPhP. While the component widths are small, due to the strong coupling of SPhPs, another peak appears in the EM-LDOS spectrum besides the two intrinsic ones. And the position of the new peak move toward high frequency when the width ratio of SiC and Si increases. The influences of distance from the surfaces and period of 1DMS on EM-LDOS have also been studied in detail. The results are helpful in studying the near-field radiative heat transfer and spontaneous emission.
Journal of Physics D | 2015
Qiushun Zou; Tianbao Yu; Jiang-Tao Liu; Nian-Hua Liu; Tong-Biao Wang; Qinghua Liao
We report an acoustic multimode interference effect and self-imaging phenomena in an acoustic multimode waveguide system which consists of M parallel phononic crystal waveguides (M-PnCWs). Results show that the self-imaging principle remains applicable for acoustic waveguides just as it does for optical multimode waveguides. To achieve the dispersions and replicas of the input acoustic waves produced along the propagation direction, we performed the finite element method on M-PnCWs, which support M guided modes within the target frequency range. The simulation results show that single images (including direct and mirrored images) and N-fold images (N is an integer) are identified along the propagation direction with asymmetric and symmetric incidence discussed separately. The simulated positions of the replicas agree well with the calculated values that are theoretically decided by self-imaging conditions based on the guided mode propagation analysis. Moreover, the potential applications based on this self-imaging effect for acoustic wavelength de-multiplexing and beam splitting in the acoustic field are also presented.