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Page 31 of 31: Prev << 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 (769 Items)
| 6. | Quantum Light: Unlocking the Invisible and Transforming the Possible M. Razeghi Journal of the Franklin Institute, 108997 (2026) ...[Visit Journal] Manijeh Razeghi explores the future of quantum photonics in the article. Drawing on her work engineering and detecting light across wavelengths from deep ultraviolet to terahertz, Razeghi describes how advances in quantum light could open new possibilities in public health, sensing, high-speed communication, energy and exploration. [reprint (PDF)] |
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| 5. | Novel Sb-based Materials for Uncooled Infrared Photodetector Applications J.J. Lee and M. Razeghi Journal of Crystal Growth 221 (1-4)-- December 1, 2000 ...[Visit Journal] We have developed low-pressure metalorganic chemical vapor deposition technology for the growth of novel III-V Sb-based compounds such as InTlSb, InTlAsSb. and InSbSi. The incorporation of Tl and Si is investigated with various characterization techniques. Preliminary infrared photodetectors based on these materials are fabricated and tested. The maximum responsivity of an In0.96Tl0.04Sb photodetector is about 6.64 V/W at 77 K, corresponding to a Johnson-noise-limited detectivity of about 7.64 x 10(8) cm Hz(1/2)/W. Photoresponse of the In0.94Tl0.06Sb photodetector has been extended to 11 mum at 300K. Infrared photoresponse up to 15 mum is achieved from the InTlAsSb alloy at room temperature. We also demonstrate the uncooled InSbBi photodetector operating in the 8-12 mum range. The voltage responsivity at 10.6 mum is about 1.9mV/W at 300K and the corresponding Johnson-noise-limited detectivity is 1.2 x 10(6) cm Hz(1/2)/W. The carrier lifetime is estimated to be 0.7ns. [reprint (PDF)] |
| 4. | Room temperature CW operation of GaInAsP/InP double heterostructure diode lasers emitting at 1.5 μm grown by low pressure metalorganic chemical vapour deposition (LP-MO CVD) M. Razeghi, P. Hirtz, R. Blondeau, J.-P. Larivain, L. Noel, B. de Cremoux, J.-P. Duchemin Electronics Letters Volume 18, Issue 3 https://doi.org/10.1049/el:19820088-- February 1, 1982 ...[Visit Journal] Room temperature continuous wave (CW) operation at 1.5 μm has been achieved in GaInAsP/InP DH lasers fabricated on material grown by low-pressure metalorganic chemical vapour deposition (LP-MO CVD). Threshold currents as low as 200 mA DC have been measured for devices with a stripe width of 9 μm and a cavity length of 300 μm. Values of To as high as 64 K have been obtained, where To is defined by the expression Jth(T) = Jth(0) exp (T/To). Fundamental transverse mode oscillation has been achieved up to an output power of 10 mW. [reprint (PDF)] |
| 4. | InGaAlAs/InP Quantum Well Infrared Photodetectors for 8-20 μm Wavelengths C. Jelen, S. Slivken, V. Guzman, M. Razeghi, and G. Brown IEEE Journal of Quantum Electronics 34 (10)-- October 1, 1998 ...[Visit Journal] We demonstrate the first long-wavelength quantum-well infrared photodetectors using the lattice-matched n-doped InGaAlAs-InP materials system. Samples with AlAs mole fractions of 0.0, 0.1, and 0.15 result in cutoff wavelengths of 8.5, 13.3, and 19.4 mu m, respectively. A 45 degrees facet coupled illumination. responsivity of R = 0.37 A/W and detectivity of D-lambda* = 3 x 10(8) cm .root Hz . W-1 at T = K, for a cutoff wavelength lambda(c) = 13.3 mu m have been achieved. Based on the measured intersubband photoresponse wavelength, a null conduction band offset is expected for In0.52Ga0.21Al0.27As-InP heterojunctions. [reprint (PDF)] |
| 4. | Uncooled InAs-GaSb type-II infrared detectors grown on GaAs substrates for the 8-12-μm atmospheric window H. Mohseni, J. Wojkowski, M. Razeghi, G. Brown, and W. Mitchel IEEE J Quantum Elect 35, 1041–1044 (1999)-- July 1, 1999 ...[Visit Journal] We report on the growth and characterization of type-II infrared detectors with an InAs-GaSb superlattice active layer for the 8-12-mu m atmospheric window at 300 K, The material was grown by molecular beam epitaxy on semi-insulating GaAs substrates. Photoconductive detectors fabricated from the superlattices showed 80% cutoff at about 12 mu m at room temperature. The responsivity of the device is about 2 mA/W with a 1-V bias (E = 5 V/cm) and the maximum measured detectivity of the device is 1.3 x 10(8) cm.Hz(1/2)/W at 11 mu m at room temperature. The detector shows very weak temperature sensitivity. Also, the extracted effective carrier lifetime, tau = 26 ns, is an order of magnitude longer than the carrier lifetime in HgCdTe with similar bandgap and carrier concentration. [reprint (PDF)] |
| 4. | Quantum cascade laser: A tool for trace chemical detection Allan J. Evans; Manijeh Razeghi American Filtration and Separations Society - 20th Annual Conference and Exposition of the American Filtration and Separations Society 2:914-923 (2007)-- March 26, 2007 Laser-based trace chemical sensors are highly desired to enhance pollution filtering, health and safety monitoring, and filter efficiency monitoring for industrial processes. Limitations of current monitoring and sensing techniques are discussed and the benefits of mid-infrared spectroscopy using novel Quantum Cascade semiconductor Lasers (QCLs) are presented. These new techniques promise inexpensive, miniaturized sensors, capable of remote detection of trace chemicals in liquids, solids, and gasses with levels less than 1 part-per-billion. Applications of these techniques are discussed and the most recent developments of application-ready high power (> 100 mW), continuous-wave, mid-infrared QCLs operating above room temperature with lifetimes exceeding 12,000 hours are presented. |
| 4. | Overview of Antimonide Based III-V Semiconductor Epitaxial Layers and their Applications at the Center for Quantum Devices M. Razeghi The European Physical Journal-Applied Physics, Vol. 23-- September 15, 2003 ...[Visit Journal] The properties of Sb-based III-V semiconductor compounds for optoelectronic applications in the mid-wavelength infrared (MWIR) and long-wavelength infrared (LWIR) range were reviewed. The growths of the Sb-based binary, ternary and quaternary were studied by molecular beam epitaxy (MBE) and metalorganic chemical vapor deposition (MOCVD). The structural, optical and electrical characterizations were carried out. Focal plane array, photoconductors and photodiodes were fabricated for the MWIR and LWIR range. Doublehetero structure (DH), multi-quantum well (MQW) and strained superlattice (SSL) lasers in the 3-5 μm range were fabricated. InAs-GaSb type-II superlattices were designed, grown and fabricated into photodetectors for the MWIR and LWIR range. [reprint (PDF)] |
| 3. | Type-II Binary Superlattices for Infrared Detector M. Razeghi, H. Mohseni and G.J. Brown Journal of the Korean Physical Society 39-- December 1, 2001 ...[Visit Journal] III-V quantum wells and superlattices based on InAs/GaSb/AlSb, and related compounds have
attracted many attentions due to their unique band alignments and physical properties. Recently,
novel electronic and optoelectronic heterostructures have been proposed from this material system for hundred gigahertz logic circuits, terahertz transistors, RTDs, infrared lasers, and infrared detectors. In this paper we will describe the ongoing research at the Center for Quantum Devices to develop the theory, modeling, growth, characterization, and device fabrication techniques for this material system. We have demonstrated the rst uncooled infrared detectors from type-II superlattices. The measured detectivity is more than 1 x 108 cm·Hz½/W at 10.6 μm at room temperature which is higher than the commercially available uncooled photon detectors at similar wavelength. In parallel, we have demonstrated the rst high-performance p-i-n type-II photodiode in the very long wavelength infrared (VLWIR) range operating at T = 80 K. The devices with cuto wavelength of 16 μm showed a responsivity of 3.5 A/W at 80 K leading to a detectivity of 1.51 x 1010 cm·Hz½/W. Similar devices with cutoff wavelengths up to 25 μm was demonstrated at 80 K. To enhance this technology further, we plan to move from quantum wells to quantum wire and quantum dots. [reprint (PDF)] |
| 3. | UVC communication with (Al)Ga₂O₃ photodetectors & a Q-switched solid-state laser including demonstration of a Rayleigh-scattering-based NLOS link D. Rogers, V. Sandana, M. Chamberlin, F. Teherani, S. Prein, and M. Razeghi OPTO (SPIE, 2026), Vol. PC13897 ...[Visit Journal] This work reports solar-blind ultraviolet-C (UVC) optical communication links implemented using epitaxial (Al)Ga₂O₃ metal–semiconductor–metal photodetectors paired with a wavelength-matched, passively Q-switched 213 nm solid-state laser. The photodetectors, originally developed for space-based monitoring of the Herzberg continuum, combine high solar blindness, femtoampere-level dark noise, and robust operation under demanding conditions. Both line-of-sight (LOS) and non-line-of-sight (NLOS) communication geometries are investigated.
The detectors exhibit a sharp UVC responsivity peak near 215 nm, a solar-rejection ratio exceeding 2 × 10⁴, and low dark signals enabled by bandgap engineering via aluminum alloying. These characteristics allow LOS communication at distances up to 110 m with sub-20 ms response times, as well as detection of NLOS optical signals at the femtowatt level under near-zero-bias (photovoltaic) operating conditions. For off-axis angles of 15°, the measured NLOS photocurrents are in quantitative agreement with single-scatter Rayleigh predictions, while signals at 45° fall below the detection threshold, consistent with reduced scattering volume and angular dependence.
To the authors’ knowledge, this constitutes the first experimental demonstration of Rayleigh-scattering-based NLOS UVC communication using Ga₂O₃ photodetectors, extending prior Ga₂O₃ communication studies beyond pure LOS configurations. The results highlight the potential of Ga₂O₃-based sensors and compact solid-state UVC sources for alignment-tolerant and covert optical communication links in both terrestrial and space -relevant environments.
[reprint (PDF)] |
| 3. | High Power Quantum Cascade Lasers Operating at Room Temperature M. Razeghi and S. Slivken Journal of the Korean Physical Society, Vol. 42, pp. S637-S641-- February 1, 2003 ...[Visit Journal] In this paper, some key design and technology issues for development of high power quantum
cascade lasers are discussed. The scaling of power output with the number of emitting stages is
shown. As part of this work, high power, 75-stage, λ = 9 μm lasers have been demonstrated with a peak power of 7 W at room temperature. This power is a direct result of high quality material
growth and a low loss waveguide design. Similar results are demonstrated at a shorter wavelength
(λ = 6.1 μm) utilizing a strain-balanced active region/injector design. For a 30-stage structure, 2 W peak power and 250 mW average power have been demonstrated at room temperature. Lastly, a timeline comparison of QCL laser performance is presented in terms of room temperature threshold
current density and peak output power for various groups. [reprint (PDF)] |
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| 2. | High Power Quantum Cascade Lasers (QCLs) Grown by GasMBE M. Razeghi and S. Slivken Opto-Electronics Review, 11 (2)-- January 1, 2003 ...[Visit Journal] This paper is a brief summary of the technological development and state-of-the-art performance of quantum cascade lasers (QCLs) produced at the Centre for Quantum Devices. Laser design will be discussed, as well as experimental details of device fabrication. Recent work has focused on the development of high peak and average power QCLs emitting at room temperature and above. Scaling of the output is demonstrated by increasing the number of emitting regions in the waveguide core. At λ = 9 µm, over 7 W of peak power has bee demonstrated at room temperature for a single diode, with an average power of 300 mW at 6% duty cycle. At shorter wavelengths, laser development includes the use of highly strain-balanced heterostructures in order to maintain a high conduction band offset and minimize leakage current. At λ = 6 µm, utilizing a high reflective coating and epilayer-down mounting of the laser, we have demonstrated 225 mW of average power from a single facet at room temperature. Lastly, these results are put in the perspective of other reported results and possible future directions are discussed. [reprint (PDF)] |
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