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Dive into the research topics where Wenjia Zhou is active.

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Featured researches published by Wenjia Zhou.


Optics Express | 2015

Quantum cascade lasers: from tool to product

Manijeh Razeghi; Q. Y. Lu; N. Bandyopadhyay; Wenjia Zhou; D. Heydari; Y. Bai; S. Slivken

The quantum cascade laser (QCL) is an important laser source in the mid-infrared and terahertz frequency range. The past twenty years have witnessed its tremendous development in power, wall plug efficiency, frequency coverage and tunability, beam quality, as well as various applications based on QCL technology. Nowadays, QCLs can deliver high continuous wave power output up to 5.1 W at room temperature, and cover a wide frequency range from 3 to 300 μm by simply varying the material components. Broadband heterogeneous QCLs with a broad spectral range from 3 to 12 μm, wavelength agile QCLs based on monolithic sampled grating design, and on-chip beam QCL combiner are being developed for the next generation tunable mid-infrared source for spectroscopy and sensing. Terahertz sources based on nonlinear generation in QCLs further extend the accessible wavelength into the terahertz range. Room temperature continuous wave operation, high terahertz power up to 1.9 mW, and wide frequency tunability form 1 to 5 THz makes this type of device suitable for many applications in terahertz spectroscopy, imaging, and communication.


Applied Physics Letters | 2015

High power frequency comb based on mid-infrared quantum cascade laser at λ ∼ 9 μm

Q. Y. Lu; Manijeh Razeghi; S. Slivken; N. Bandyopadhyay; Y. Bai; Wenjia Zhou; M. Chen; D. Heydari; Abbas Haddadi; R. McClintock; Maria I. Amanti; Carlo Sirtori

We investigate a frequency comb source based on a mid-infrared quantum cascade laser at λ ∼ 9 μm with high power output. A broad flat-top gain with near-zero group velocity dispersion has been engineered using a dual-core active region structure. This favors the locking of the dispersed Fabry-Perot modes into equally spaced frequency lines via four wave mixing. A current range with a narrow intermode beating linewidth of 3 kHz is identified with a fast detector and spectrum analyzer. This range corresponds to a broad spectral coverage of 65 cm−1 and a high power output of 180 mW for ∼176 comb modes.


Scientific Reports | 2016

Monolithically, widely tunable quantum cascade lasers based on a heterogeneous active region design

Wenjia Zhou; N. Bandyopadhyay; D. Wu; Ryan McClintock; Manijeh Razeghi

Quantum cascade lasers (QCLs) have become important laser sources for accessing the mid-infrared (mid-IR) spectral range, achieving watt-level continuous wave operation in a compact package at room temperature. However, up to now, wavelength tuning, which is desirable for most applications, has relied on external cavity feedback or exhibited a limited monolithic tuning range. Here we demonstrate a widely tunable QCL source over the 6.2 to 9.1 μm wavelength range with a single emitting aperture by integrating an eight-laser sampled grating distributed feedback laser array with an on-chip beam combiner. The laser gain medium is based on a five-core heterogeneous QCL wafer. A compact tunable laser system was built to drive the individual lasers within the array and produce any desired wavelength within the available spectral range. A rapid, broadband spectral measurement (520 cm−1) of methane using the tunable laser source shows excellent agreement to a measurement made using a standard low-speed infrared spectrometer. This monolithic, widely tunable laser technology is compact, with no moving parts, and will open new opportunities for MIR spectroscopy and chemical sensing.


Applied Physics Letters | 2018

Phase-locked, high power, mid-infrared quantum cascade laser arrays

Wenjia Zhou; S. Slivken; Manijeh Razeghi

We demonstrate phase-locked, high power quantum cascade laser arrays, which are combined using a monolithic, tree array multimode interferometer, with emission wavelengths around 4.8 μm. A maximum output power of 15 W was achieved from an eight-element laser array, which has only a slightly higher threshold current density and a similar slope efficiency compared to a Fabry-Perot laser of the same length. Calculated multimode interferometer splitting loss is on the order of 0.27 dB for the in-phase supermode. In-phase supermode operation with nearly ideal behavior is demonstrated over the working current range of the array.We demonstrate phase-locked, high power quantum cascade laser arrays, which are combined using a monolithic, tree array multimode interferometer, with emission wavelengths around 4.8 μm. A maximum output power of 15 W was achieved from an eight-element laser array, which has only a slightly higher threshold current density and a similar slope efficiency compared to a Fabry-Perot laser of the same length. Calculated multimode interferometer splitting loss is on the order of 0.27 dB for the in-phase supermode. In-phase supermode operation with nearly ideal behavior is demonstrated over the working current range of the array.


Scientific Reports | 2018

Single-mode, high-power, mid-infrared, quantum cascade laser phased arrays

Wenjia Zhou; D. Wu; Q. Y. Lu; S. Slivken; Manijeh Razeghi

We demonstrate single-mode, 16-channel, optical phased arrays based on quantum cascade laser technology, with emission wavelengths around 4.8 µm. The integrated device consists of a distributed feedback seed section, a highly-efficient tree array multi-mode interferometer power splitter, and a 16-channel amplifier array with a 4° angled facet termination. With a single layer Y2O3 coating, the angled facet reflectivity is estimated to be less than 0.1% for suppressing amplifier self-lasing. A peak output power of 30 W is achieved with an emission spectrum narrower than 11 nm and a side mode suppression ratio over 25 dB. Far field distribution measurement result indicates a uniform phase distribution across the array output. Using the same phased array architecture, we also demonstrate single-mode 3.8 µm QCL amplifier arrays with up to 20 W output power.


Quantum Sensing and Nano Electronics and Photonics XV | 2018

Broadband monolithically-tunable quantum cascade lasers

Wenjia Zhou; Ryan McClintock; D. Wu; S. Slivken; Manijeh Razeghi

Mid-infrared lasers, emitting in the spectral region of 3-12 μm that contain strong characteristic vibrational transitions of many important molecules, are highly desirable for spectroscopy sensing applications. High efficiency quantum cascade lasers have been demonstrated with up to watt-level output power in the mid-infrared region. However, the wide wavelength tuning, which is critical for spectroscopy applications, is still largely relying on incorporating external gratings, which have stability issues. Here, we demonstrate the development a monolithic, widely tunable quantum cascade laser source emitting between 6.1 and 9.2 μm through an on-chip integration of a sampled grating distributed feedback tunable laser array with a beam combiner. A compact tunable laser system was built to drive the individual lasers within the array and coordinate the driving of the laser array to produce desired wavelength. A broadband spectral measurement (520cm-1) of methane shows excellent agreement with Fourier transform infrared spectrometer measurement. Further optimizations have led to high performance monolithic tunable QCLs with up to 65 mW output while delivering fundamental mode outputs.


Applied Optics | 2017

Recent progress of quantum cascade laser research from 3 to 12 μm at the Center for Quantum Devices [Invited]

Manijeh Razeghi; Wenjia Zhou; S. Slivken; Q. Y. Lu; D. Wu; Ryan McClintock


Optica | 2017

High performance monolithic, broadly tunable mid-infrared quantum cascade lasers

Wenjia Zhou; D. Wu; Ryan McClintock; S. Slivken; Manijeh Razeghi


Imaging and Applied Optics 2018 (3D, AO, AIO, COSI, DH, IS, LACSEA, LS&C, MATH, pcAOP) | 2018

Multiple-band, Single-mode, High-power, Phase-locked, Mid-infrared Quantum Cascade Laser Arrays

Manijeh Razeghi; Wenjia Zhou; Q. Y. Lu; D. Wu; S. Slivken


Optical Engineering | 2017

Progress in monolithic, broadband, widely tunable midinfrared quantum cascade lasers

Manijeh Razeghi; Wenjia Zhou; Ryan McClintock; D. Wu

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S. Slivken

Northwestern University

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D. Wu

Northwestern University

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Q. Y. Lu

Northwestern University

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D. Heydari

Northwestern University

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Y. Bai

Northwestern University

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M. Chen

Northwestern University

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