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Dive into the research topics where A. Kurdoghlian is active.

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Featured researches published by A. Kurdoghlian.


international electron devices meeting | 2006

GaN HFET for W-band Power Applications

Miroslav Micovic; A. Kurdoghlian; P. Hashimoto; M. Hu; M. Antcliffe; P. J. Willadsen; W.-S. Wong; R. Bowen; I. Milosavljevic; A. Schmitz; M. Wetzel; D. H. Chow

In this paper we report high frequency GaN power device and measured power performance of the first W-band (75 GHz-110 GHz) MMIC fabricated in GaN material system. The first W-band GaN MMIC with 150 mum of output gate periphery produces 316 mW of continuous wave output power (power density =2.1 W/m) at a frequency of 80.5 GHz and has associated power gain of 17.5 dB. By comparison the reported state of the art for other solid state technologies in W-band is 427 mW measured in a pulsed mode on an InP HEMT MMIC with 1600 mum of output periphery (power density = 0.26 W/mm). The reported result demonstrates tremendous superiority of GaN device technology for power applications at frequencies greater than 75 GHz


international electron devices meeting | 2004

GaN double heterojunction field effect transistor for microwave and millimeterwave power applications

Miroslav Micovic; P. Hashimoto; Ming Hu; I. Milosavljevic; J. Duvall; P. J. Willadsen; W.-S. Wong; A.M. Conway; A. Kurdoghlian; Peter W. Deelman; Jeong-S. Moon; A. Schmitz; M.J. Delaney

We report development of a novel AlGaN/GaN/AlGaN double heterojunction field effect tansistor (DHFET) with improved device performance over the conventional single heterojunction GaN FET (SHFET). The GaN DHFETs with low Al content Al/sub 0.04/Ga/sub 0.96/N buffer layer exhibit three orders of magnitude lower subthreshold drain leakage current and almost three orders of magnitude higher buffer isolation than corresponding SHFET devices (600 M/spl Omega//sq. vs. 1 M/spl Omega//sq.). In GaN DHFETs with 0.15 /spl mu/m conventional T-gates we observed 30% improvement in saturated power density and 10% improvement in PAE at 10 GHz over a corresponding SHFET device.


IEEE Transactions on Electron Devices | 2001

AlGaN/GaN heterojunction field effect transistors grown by nitrogen plasma assisted molecular beam epitaxy

Miroslav Micovic; A. Kurdoghlian; Paul Janke; P. Hashimoto; D. Wong; Jeong S. Moon; L. McCray; Chanh Nguyen

In this work, we demonstrate state of the art performance of GaN HFETs grown on SiC by rf Nitrogen plasma assisted molecular beam epitaxy (MBE) at 10 and 20 GHz and good power scalability of these devices at 10 GHz. A single stage power amplifier built by power combining four of our 1 mm devices exhibits continuous wave output power of 22.9 W with associated power added efficiency (PAE) of 37% at 9 GHz. This is to the best of our knowledge the highest CW power and the best combination of power and PAE demonstrated to date for a GaN based microwave integrated circuit at this frequency.


international microwave symposium | 2012

92–96 GHz GaN power amplifiers

Miroslav Micovic; A. Kurdoghlian; Alexandros D. Margomenos; David F. Brown; K. Shinohara; Shawn D. Burnham; I. Milosavljevic; R. Bowen; Adam J. Williams; P. Hashimoto; Robert Grabar; C. Butler; A. Schmitz; P. J. Willadsen; D. H. Chow

We report the test results of a family of 92-96 GHz GaN power amplifiers (PA) with increasing gate peripheries (150 µm to 1200 µm). The 1200 µm, 3-stage PA produces 2.138 W output power (Pout) with an associated PAE of 19% at 93.5 GHz (VD=14V). The amplifier offers Pout over 1.5W with associated PAE over 17.8% in the 92–96 GHz bandwidth. The measured data show that the maximum Pout scales linearly with increasing gate periphery at an almost constant PAE around 20%. This demonstrates the high efficiency of on-chip power combining and enables W-band high power single chip solid state power amplifiers.


international microwave symposium | 2010

W-Band GaN MMIC with 842 mW output power at 88 GHz

Miroslav Micovic; A. Kurdoghlian; K. Shinohara; I. Milosavljevic; Shawn D. Burnham; M. Hu; A. L. Corrion; W.-S. Wong; A. Schmitz; P. Hashimoto; P. J. Willadsen; D. H. Chow; Andy Fung; R. H. Lin; Lorene Samoska; P. P. Kangaslahti; B. H. Lambrigtsen; P. F. Goldsmith

We report W-band GaN MMICs that produce 96% more power at a frequency of 88 GHz in continuous wave (CW) operation than the highest power reported in this frequency band for the best competing solid state technology[1], the InP HEMT. W-band power module containing a single three stage GaN MMIC chip with 600 µm wide output stage produced over 842 mW of output power in CW-mode, with associated PAE of 14.7% and associated power gain of 9.3 dB. This performance was measured at MMIC drain bias of 14 V.


compound semiconductor integrated circuit symposium | 2005

GaN MMIC technology for microwave and millimeter-wave applications

Miroslav Micovic; A. Kurdoghlian; Harris P. Moyer; P. Hashimoto; A. Schmitz; I. Milosavljevic; P. J. Willadsen; W.-S. Wong; J. Duvall; M. Hu; M. Wetzel; D. H. Chow

In this paper we demonstrate the merits of GaN MMIC technology for high bandwidth millimeter-wave power applications and for microwave robust LNA receiver applications. We report the development of a broadband two-stage microstrip Ka-band GaN MMIC power amplifier, with 15dB of flat small signal gain over the 27.5GHz to 34.5GHz frequency range and 4W of saturated output power at 28GHz, with a power added efficiency of 23.8%. This is to the best of our knowledge the best combination of output power, bandwidth and efficiency reported for a GaN MMIC in Ka-band frequency range. We also report a robust two-stage wideband (0.5GHz-12GHz) GaN LNA MMIC, which can survive 4W of incident input RF power in CW mode without input power protective circuitry. The presented LNA MMIC has, to the best of our knowledge, the best combination of NF, bandwidth, survivability and low power consumption reported to date in GaN technology.


international microwave symposium | 2004

Wideband AlGaN/GaN HEMT MMIC low noise amplifier

Grant Andrew Ellis; Jeong-Sun Moon; D. Wong; Miroslav Micovic; A. Kurdoghlian; P. Hashimoto; M. Hu

A 3-18 GHz AlGaN/GaN high electron mobility transistor low noise amplifier on silicon carbide is reported. The measured gain (S/sub 21/) is 20 dB +/- 2.5 dB between 3-18 GHz. The minimum measured noise figure is 2.4 dB. To the authors knowledge, this is the highest gain reported over multiple octaves up to 18 GHz using GaN technology.


IEEE Electron Device Letters | 2002

Microwave noise performance of AlGaN-GaN HEMTs with small DC power dissipation

Jeong-Sun Moon; Miroslav Micovic; A. Kurdoghlian; Paul Janke; P. Hashimoto; W.-S. Wong; L. McCray; Chanh Nguyen

We report low microwave noise performance of discrete AlGaN-GaN HEMTs at DC power dissipation comparable to that of GaAs-based low-noise FETs. At 1-V source-drain (SD) bias and DC power dissipation of 97 mW/mm, minimum noise figures (NF/sub min/) of 0.75 dB at 10 GHz and 1.5 dB at 20 GHz were achieved, respectively. A device breakdown voltage of 40 V was observed. Both the low microwave noise performance at small DC power level and high breakdown voltage was obtained with a shorter SD spacing of 1.5 /spl mu/m in 0.15-/spl mu/m gate length GaN HEMTs. By comparison, NF/sub min/ with 2 /spl mu/m SD spacing was 0.2 dB greater at 10 GHz.


compound semiconductor integrated circuit symposium | 2008

GaN MMIC PAs for E-Band (71 GHz - 95 GHz) Radio

Miroslav Micovic; A. Kurdoghlian; Harris P. Moyer; P. Hashimoto; M. Hu; M. Antcliffe; P. J. Willadsen; W.-S. Wong; R. Bowen; I. Milosavljevic; Y. Yoon; A. Schmitz; M. Wetzel; C. McGuire; Brian Hughes; D. H. Chow

High data rate E-band (71 GHz- 76 GHz, 81 GHz - 86 GHz, 92 GHz - 95 GHz) communication systems will benefit from power amplifiers that are more than twice as powerful than commercially available GaAs pHEMT MMICs. We report development of three stage GaN MMIC power amplifiers for E-band radio applications that produce 500 mW of saturated output power in CW mode and have > 12 dB of associated power gain. The output power density from 300 mum output gate width GaN MMICs is seven times higher than the power density of commercially available GaAs pHEMT MMICs in this frequency range.


compound semiconductor integrated circuit symposium | 2007

Robust Broadband (4 GHz - 16 GHz) GaN MMIC LNA

Miroslav Micovic; A. Kurdoghlian; T. Lee; R. O. Hiramoto; P. Hashimoto; A. Schmitz; I. Milosavljevic; P. J. Willadsen; W.-S. Wong; M. Antcliffe; M. Wetzel; M. Hu; M. J. Delaney; D. H. Chow

We report robust GaN MMIC LNA operating over 4 GHz-6 GHz frequency range. An FET biased in common-drain configuration is used on the second stage of the MMIC to obtain good input return loss at the optimum noise match over the entire frequency range. The measured noise figure of the MMIC is less than 2 dB over the 4.5 GHz to 16 GHz frequency range and NF has a minimum of 1.45 dB at a frequency of 6.5 GHz. The MMIC gain is more than 10 dB and the input return loss of the MMIC is less than -10 dB over the 4 GHz-15 GHz frequency range. Reported MMIC can survive 5.4 W of incident RF power without front end protection. To the authors knowledge this is the best combination of the noise figure, input return loss, RF survivability and broadband response reported to date in this frequency range using GaN technology. The noise figure of the reported GaN MMIC is 0.5 dB lower than the overall noise figure of an equivalent GaAs pHEMT module consisting of the state of the art LNA and a 5 Watt power limiter at the front end.

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