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Dive into the research topics where Chun Wang Ivan Chan is active.

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Featured researches published by Chun Wang Ivan Chan.


Optics Express | 2012

Terahertz quantum cascade lasers operating up to ~200 K with optimized oscillator strength and improved injection tunneling

Saeed Fathololoumi; Emmanuel Dupont; Chun Wang Ivan Chan; Z. R. Wasilewski; Sylvain R. Laframboise; Dayan Ban; Alpar Matyas; Christian Jirauschek; Qing Hu; H. C. Liu

A new temperature performance record of 199.5 K for terahertz quantum cascade lasers is achieved by optimizing the lasing transition oscillator strength of the resonant phonon based three-well design. The optimum oscillator strength of 0.58 was found to be larger than that of the previous record (0.41) by Kumar et al. [Appl. Phys. Lett. 94, 131105 (2009)]. The choice of tunneling barrier thicknesses was determined with a simplified density matrix model, which converged towards higher tunneling coupling strengths than previously explored and nearly perfect alignment of the states across the injection and extraction barriers at the design electric field. At 8 K, the device showed a threshold current density of 1 kA/cm2, with a peak output power of ∼ 38 mW, and lasing frequency blue-shifting from 2.6 THz to 2.85 THz with increasing bias. The wavelength blue-shifted to 3.22 THz closer to the maximum operating temperature of 199.5 K, which corresponds to ∼ 1.28ħω/κB. The voltage dependence of laser frequency is related to the Stark effect of two intersubband transitions and is compared with the simulated gain spectra obtained by a Monte Carlo approach.


Journal of Applied Physics | 2013

Effect of oscillator strength and intermediate resonance on the performance of resonant phonon-based terahertz quantum cascade lasers

Saeed Fathololoumi; Emmanuel Dupont; Z. R. Wasilewski; Chun Wang Ivan Chan; Seyed Ghasem Razavipour; Sylvain R. Laframboise; Shengxi Huang; Qing Hu; Dayan Ban; H. C. Liu

We experimentally investigated the effect of oscillator strength (radiative transition diagonality) on the performance of resonant phonon-based terahertz quantum cascade lasers that have been optimized using a simplified density matrix formalism. Our results show that the maximum lasing temperature (Tmax) is roughly independent of laser transition diagonality within the lasing frequency range of the devices under test (3.2‐3.7THz) when cavity loss is kept low. Furthermore, the threshold current can be lowered by employing more diagonal transition designs, which can effectively suppress parasitic leakage caused by intermediate resonance between the injection and the downstream extraction levels. Nevertheless, the current carrying capacity through the designed lasing channel in more diagonal designs may sacrifice even more, leading to electrical instability and, potentially, complete inhibition of the device’s lasing operation. We propose a hypothesis based on electric-field domain formation and competition/switching of different current-carrying channels to explain observed electrical instability in devices with lower oscillator strengths. The study indicates that not only should designers maximize Tmax during device optimization but also they should always consider the risk of electrical instability in device operation. V C 2013 American


Journal of Applied Physics | 2013

An indirectly pumped terahertz quantum cascade laser with low injection coupling strength operating above 150 K

Seyed Ghasem Razavipour; Emmanuel Dupont; Saeed Fathololoumi; Chun Wang Ivan Chan; Martin Lindskog; Z. R. Wasilewski; G. C. Aers; Sylvain R. Laframboise; Andreas Wacker; Qing Hu; Dayan Ban; H. C. Liu

We designed and demonstrated a terahertz quantum cascade laser based on indirect pump injection to the upper lasing state and phonon scattering extraction from the lower lasing state. By employing a rate equation formalism and a genetic algorithm, an optimized active region design with four-well GaAs/Al0.25Ga0.75As cascade module was obtained and epitaxially grown. A figure of merit which is defined as the ratio of modal gain versus injection current was maximized at 150 K. A fabricated device with a Au metal-metal waveguide and a top n+ GaAs contact layer lased at 2.4 THz up to 128.5 K, while another one without the top n+ GaAs lased up to 152.5 K (1.3ℏω/kB). The experimental results have been analyzed with rate equation and nonequilibrium Greens function models. A high population inversion is achieved at high temperature using a small oscillator strength of 0.28, while its combination with the low injection coupling strength of 0.85 meV results in a low current. The carefully engineered wavefunctions e...


Applied Physics Letters | 2012

Gain measurements of scattering-assisted terahertz quantum cascade lasers

David Burghoff; Chun Wang Ivan Chan; Qing Hu; John L. Reno

Using terahertz time-domain spectroscopy, the gain of scattering-assisted terahertz quantum cascade lasers is measured. By examining the intersubband gain and absorption over a wide range of bias voltages, we experimentally detect energy anticrossings—revealing information about the mechanism of laser action—and compare the resonant-tunneling injection scheme to the scattering-assisted injection scheme. The temperature performance of the gain medium is also measured and discussed, and an additional intersubband transition is identified that contributes to scattering-assisted lasing action at high temperatures.


Applied Physics Letters | 2012

Effects of stimulated emission on transport in terahertz quantum cascade lasers based on diagonal designs

I. Bhattacharya; Chun Wang Ivan Chan; Qing Hu

A hybrid Monte Carlo-density matrix transport simulator is used to analyze the transport properties of resonant-phonon type terahertz quantum cascade lasers. By comparing calculated and experimental results, the importance of stimulated emission to the interpretation of experimental data is highlighted, particularly for devices based on diagonal radiative transitions. Finally, we discuss the absence of mode competition effects on transport.


Applied Physics Letters | 2014

A high carrier injection terahertz quantum cascade laser based on indirectly pumped scheme

Seyed Ghasem Razavipour; Emmanuel Dupont; Chun Wang Ivan Chan; Chao Xu; Z. R. Wasilewski; Sylvain R. Laframboise; Qing Hu; Dayan Ban

A Terahertz quantum cascade laser with a rather high injection coupling strength based on an indirectly pumped scheme is designed and experimentally implemented. To effectively suppress leakage current, the chosen quantum cascade module of the device is based on a five-well GaAs/Al0.25Ga0.75As structure. The device lases up to 151 K with a lasing frequency of 2.67 THz. This study shows that the effect of higher energy states in carrier transport and the long-range tunnel coupling between states that belong to non-neighbouring modules have to be considered in quantum design of structures with a narrow injector barrier. Moreover, the effect of interface roughness scattering between the lasing states on threshold current is crucial.


Nature Photonics | 2014

Terahertz laser frequency combs

David Burghoff; Tsung-Yu Kao; Ningren Han; Chun Wang Ivan Chan; Xiaowei Cai; Yang Yang; D. J. Hayton; J. R. Gao; John L. Reno; Qing Hu


IEEE | 2010

Operation of a 1.8-THz quantum-cascade laser above 160 K

Chun Wang Ivan Chan; Qing Hu; Sushil Kumar; John L. Reno


conference on lasers and electro optics | 2014

Development of terahertz laser frequency combs

David Burghoff; Tsung-Yu Kao; Ningren Han; Chun Wang Ivan Chan; D. J. Hayton; J. R. Gao; John L. Reno; Qing Hu


Nature | 2013

Passive terahertz frequency combs.

John L. Reno; David Burghoff; Tsung-Yu Kao; Ningren Han; Chun Wang Ivan Chan; D. J. Hayton; J. N. Hovenier; J. R. Gao; Qing Hu

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Qing Hu

Massachusetts Institute of Technology

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John L. Reno

Sandia National Laboratories

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Dayan Ban

University of Waterloo

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Emmanuel Dupont

National Research Council

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David Burghoff

Massachusetts Institute of Technology

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Ningren Han

Massachusetts Institute of Technology

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Tsung-Yu Kao

Massachusetts Institute of Technology

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