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Dive into the research topics where Renbin Zhong is active.

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Featured researches published by Renbin Zhong.


Applied Physics Letters | 2014

Coherent and tunable terahertz radiation from graphene surface plasmon polaritons excited by an electron beam

Shenggang Liu; Chao Zhang; Min Hu; Xiaoxing Chen; Ping Zhang; Sen Gong; Tao Zhao; Renbin Zhong

Although surface plasmon polaritons (SPPs) resonance in graphene can be tuned in the terahertz regime, transforming such SPPs into coherent terahertz radiation has not been achieved. Here, we propose a graphene-based coherent terahertz radiation source with greatly enhanced intensity. The radiation works at room temperature, it is tunable and can cover the whole terahertz regime. The radiation intensity generated with this method is 400 times stronger than that from SPPs at a conventional dielectric or semiconducting surface and is comparable to that from the most advanced photonics source such as a quantum cascade laser. The physical mechanism for this strong radiation is presented. The phase diagrams defining the parameters range for the occurrence of radiation is also shown.


Applied Physics Letters | 2015

Transformation of surface plasmon polaritons to radiation in graphene in terahertz regime

Sen Gong; Tao Zhao; Matthew Sanderson; Min Hu; Renbin Zhong; Xiaoxing Chen; Ping Zhang; Chao Zhang; Shenggang Liu

We demonstrate a concept that allows direct excitation of surface plasmon polaritons (SPPs) by a moving electron bunch above a single layer graphene sheet deposited on a dielectric substrate without any additional coupling requirements. We show that if the two-dimensional current in the graphene is dominated by the third order nonlinear effect when the surface electric field exceeds a moderate strength of ∼5 kV/cm, the SPP mode can cross the light line although the group velocity remains much smaller than the speed of light. This effect gives rise to direct transformation of SPPs into radiation. The underlying mechanism of the crossing of the SPP dispersion into the light line is the energy shift of charged particles in the nonlinear regime and the finite transport scattering time in graphene. Both the energy and lifetime of the SPPs increase with the field intensity. The radiation intensity and frequency can be tuned with an AC bias.


Scientific Reports | 2015

Coherent and tunable terahertz radiation from graphene surface plasmon polarirons excited by cyclotron electron beam

Tao Zhao; Sen Gong; Min Hu; Renbin Zhong; Diwei Liu; Xiaoxing Chen; Ping Zhang; Xinran Wang; Chao Zhang; Peiheng Wu; Shenggang Liu

Terahertz (THz) radiation can revolutionize modern science and technology. To this date, it remains big challenges to develop intense, coherent and tunable THz radiation sources that can cover the whole THz frequency region either by means of only electronics (both vacuum electronics and semiconductor electronics) or of only photonics (lasers, for example, quantum cascade laser). Here we present a mechanism which can overcome these difficulties in THz radiation generation. Due to the natural periodicity of 2π of both the circular cylindrical graphene structure and cyclotron electron beam (CEB), the surface plasmon polaritions (SPPs) dispersion can cross the light line of dielectric, making transformation of SPPs into radiation immediately possible. The dual natural periodicity also brings significant excellences to the excitation and the transformation. The fundamental and hybrid SPPs modes can be excited and transformed into radiation. The excited SPPs propagate along the cyclotron trajectory together with the beam and gain energy from the beam continuously. The radiation density is enhanced over 300 times, up to 105 W/cm2. The radiation frequency can be widely tuned by adjusting the beam energy or chemical potential. This mechanism opens a way for developing desired THz radiation sources to cover the whole THz frequency regime.


Journal of Physics D | 2009

Terahertz radiation of electron beam–cylindrical mimicking surface plasmon wave interaction

Yaxin Zhang; Min Hu; Yan Yang; Renbin Zhong; Shenggang Liu

Since the mimicking surface plasmon (MSP) has been one of the most attractive research topics in modern science and technology nowadays, a cylindrical MSP is presented and studied theoretically by computer simulation in this paper. More importantly, such an MSP is proposed to interact with an electron beam to generate terahertz radiation. The results given in the paper show that the cylindrical MSP has distinct characteristics and the efficiency of this cylindrical MSP–electron beam interaction can reach an attractive value with a reasonable current density of the electron beam in the THz regime.


Optics Express | 2014

Electron beam excitation of surface plasmon polaritons.

Sen Gong; Min Hu; Renbin Zhong; Xiaoxing Chen; Ping Zhang; Tao Zhao; Shenggang Liu

In this paper, the excitations of surface plasmon polaritons (SPPs) by both perpendicular and parallel electron beam are investigated. The results of analytical theory and numerical calculation show that the mechanisms of these two excitations are essentially different, and the behavior and properties of SPPs in metal structures strongly depend on the methods of excitation. For the perpendicular excitation, SPPs contain plenty of frequency components, propagate with attenuation and are always accompanied with the transition radiation. Whereas for parallel excitation, SPPs waves are coherent, tunable, propagating without attenuation and the transition radiation does not occur. We also show that there are two modes for the parallel excited SPPs on the metal films and they all can be excited efficiently by the parallel moving electron beam. And the operating frequency of SPPs can be tuned in a large frequency range by adjusting the beam energy.


Applied Physics Letters | 2015

Optical bistability induced by nonlinear surface plasmon polaritons in graphene in terahertz regime

Matthew Sanderson; Yee Sin Ang; Sen Gong; Tao Zhao; Min Hu; Renbin Zhong; Xiaoxing Chen; Ping Zhang; Chao Zhang; Shenggang Liu

We demonstrate optical bistability in a prism-air-graphene-dielectric structure. Under a moderate electric field in the terahertz frequency regime, the third order nonlinear optical conductivity is comparable to the linear conductivity. The nonlinear conductivity enhances the energy of surface plasmon polaritons. Both the energy and frequency of the surface plasmon polaritons depend on the strength of the nonlinear current in the graphene layer. When considering excitation in the Kretschmann configuration, the reflectance as a function of frequency exhibits bistability. The origin of the bistability is the field dependence of the plasmon mode. We have determined the parameter regime for the occurrence of bistability in this structure.


Applied Physics Letters | 2017

Cherenkov terahertz radiation from graphene surface plasmon polaritons excited by an electron beam

Tao Zhao; Min Hu; Renbin Zhong; Sen Gong; Chao Zhang; Shenggang Liu

We demonstrate a mechanism of efficiently transforming surface plasmon polaritons (SPPs) into Cherenkov terahertz (THz) radiation. In a structure where multilayer graphene is deposited on a dielectric substrate with a buffer layer, the energy of the SPPs can be significantly enhanced. The dispersion of SPPs crosses the light line of the substrate if the buffer layer has a low permittivity relative to the substrate. As a result, the SPPs can be readily transformed into radiation without the need of wavevector compensation. Compared to the radiation from structures without graphene, the radiation power density is enhanced by nearly three orders of magnitude due to the field enhancement of SPPs. Our results could provide a promising way for developing room temperature, tunable, coherent, and intense THz radiation sources to cover the entire THz regime.


Science in China Series F: Information Sciences | 2012

Theoretical investigation of a terahertz transmission line in bipolar coordinate system

Renbin Zhong; Jun Zhou; Weihao Liu; Shenggang Liu

It has been demonstrated that the dual-wire waveguide (DWW) can be used in terahertz (THz) frequency regime with many advantages. However, the existent research approaches for the DWW are based on the electrostatic theory. In this paper, making use of the bipolar coordinate system (BCS), a rigorous analytical theory of DWW is worked out, and some important physical and optical characters of DWW including the rotating behavior etc. are revealed, the equivalent impendence and the ohmic loss for the gold DWW are calculated. An eigenvalue problem is presented from the point of view of Mathematical-Physics for TE and TM modes. The obtained results will help get a deep-going understanding of DWW and explore its application in high frequency range including THz.


Journal of Physics D | 2016

A tunable terahertz radiation source based on a surface wave transformed into Cherenkov radiation in a subwavelength array

Ping Zhang; Min Hu; Renbin Zhong; Xiaoxing Cheng; Sen Gong; Tao Zhao; Shenggang Liu

A tunable THz radiation source based on the Cherenkov radiation mechanism is proposed. In the structure of a dielectric medium rod covered by subwavelength metal ring array, the surface wave is excited by electron bunch on the subwavelength metal ring array, and then transformed into Cherenkov radiation in the dielectric medium rod. The working frequency is determined by the intersection of the surface wave dispersion curve and electron beam line, and could be tuned by adjusting the beam energy. The source, which is compact and operable at room temperature, generates radiation with peak power from microwatts up to milliwatts.


Journal of Physics D | 2012

Investigations on a nano-scale periodical waveguide structure taking surface plasmon polaritons into consideration

Weihao Liu; Renbin Zhong; Jun Zhou; Yaxin Zhang; Min Hu; Shenggang Liu

Detailed theoretical analysis and computer simulations on the electromagnetic characteristics of a nano-scale periodical waveguide structure, taking surface plasmon polaritons (SPPs) into consideration, are carried out in this paper. The results show that SPPs will significantly influence the electromagnetic characteristics of the structure. When the operation frequency is in a certain band?the ?radial confinement band?, neither radial surface plasmon waves nor guided waves, which both will lead to radial energy loss, can be excited in the structure. And the electromagnetic waves are completely confined within the longitudinal waveguide and propagate along it with little attenuation. The radial energy loss is then significantly reduced. These results are of great significance not only for increasing the efficiency of the radiation sources based on the nano-scale periodical waveguide structure but also for the development of high-efficiency waveguides and wide-band filters in the infrared and visible light regimes.

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Shenggang Liu

University of Electronic Science and Technology of China

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Min Hu

University of Electronic Science and Technology of China

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Sen Gong

University of Electronic Science and Technology of China

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Tao Zhao

University of Electronic Science and Technology of China

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Ping Zhang

University of Electronic Science and Technology of China

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Xiaoxing Chen

University of Electronic Science and Technology of China

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Chao Zhang

Chinese Academy of Sciences

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Yaxin Zhang

University of Electronic Science and Technology of China

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Diwei Liu

University of Electronic Science and Technology of China

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Jun Zhou

University of Electronic Science and Technology of China

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