Denizhan Karaca
Aalto University
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Featured researches published by Denizhan Karaca.
global symposium on millimeter waves | 2016
Ali Vahdati; Mikko Varonen; Dristy Parveg; Denizhan Karaca; Kari Halonen
This paper presents the design and measurement results of a W-band two-stage differential amplifier using transformers in 28-nm CMOS FDSOI. At 90 GHz, the amplifier achieves 13.8 dB gain, and the input and output return loss are -8.0 dB and -11 dB, repectively. The amplifier obtains +5 dBm saturated output power and 1-dB output compression point of 0 dBm at the centre frequency. From 85 to 95 GHz, the gain is better than 12.3 dB and the average noise figure (NF) is 8 dB. The design consumes 37.5 mW power from a 1-V supply and the active area of the design is 0.017 mm2.
global symposium on millimeter waves | 2016
Dristy Parveg; Denizhan Karaca; Mikko Varonen; Ali Vahdati; Kari Halonen
This paper presents a 124 to 184 GHz single-ended amplifier designed in 28-nm FDSOI CMOS technology. The amplifier consists of four common-source gain stages and broadband matching networks for input, output and inter-stage matching employing slow-wave shielded co-planar waveguides. Having a total power consumption of 31 mW, the amplifier achieves a peak gain of 10.1 dB at 167 GHz and a 3-dB bandwidth of 61 GHz.
IEEE Microwave and Wireless Components Letters | 2017
Denizhan Karaca; Mikko Varonen; Dristy Parveg; Ali Vahdati; Kari Halonen
This letter presents the design of a wideband millimeter-wave (mm-wave) low-noise amplifier (LNA) in a 28-nm FDSOI CMOS technology. Having a total power consumption of 38.2 mW, the LNA provides gain over 12 dB from 53 to 117 GHz, and has a measured NF of 6 dB from 75 to 105 GHz. To the author’s best knowledge, the presented LNA achieves the lowest NF with widest bandwidth among previously presented wideband CMOS LNAs operating in the W-band.
IEEE Transactions on Microwave Theory and Techniques | 2018
Dristy Parveg; Mikko Varonen; Denizhan Karaca; Ali Vahdati; Mikko Kantanen; Kari Halonen
This paper validates a design and modeling methodology of coupled slow-wave waveguides (CS-CPW) by presenting a D-band CMOS low-noise amplifier (LNA) that utilizes the CS-CPW for impedance matching. The robustness and feasibility of using the CS-CPW as a matching element in wideband millimeter-wave (mm-wave) silicon circuit designs are studied. Furthermore, the key design details of a mm-wave LNA are discussed. The designed monolithic microwave integrated circuit amplifier has a gain greater than 10 dB from 135 to 170 GHz with a peak gain of 15.7 dB at 160 GHz. The amplifier has a measured noise figure of 8.5 dB from 135 to 170 GHz, and an output-referred 1-dB compression point of −16.5 dBm at 160 GHz. The total power consumption of the amplifier is 32 mW.
IEEE Transactions on Antennas and Propagation | 2017
Ali Vahdati; Antti Lamminen; Mikko Varonen; Jussi Säily; Markku Lahti; Kari Kautio; Manu Lahdes; Dristy Parveg; Denizhan Karaca; Kari Halonen
This paper presents the design of a 90 GHz phased-array transmitter front end on low-temperature co-fired ceramic (LTCC) technology. The monolithic microwave integrated circuit components have been fabricated by the CMOS technology and flip chipped on the LTCC to realize the transmitter front end. The dc and differential hybrid IF signals are provided to the flip-chipped components through the bias and IF lines designed on the LTCC. An
european microwave integrated circuits conference | 2015
Dristy Parveg; Mikko Varonen; Mikko Kärkkäinen; Denizhan Karaca; Ali Vahdati; Kari Halonen
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european microwave integrated circuits conference | 2015
Ali Vahdati; Dristy Parveg; Mikko Varonen; Mikko Kärkkäinen; Denizhan Karaca; Kari Halonen
patch antenna array has been designed for the transmitter and fabricated on the LTCC. The dc and IF signal pads on the LTCC were soldered to the designed printed circuit board pads for measurements. The measurement results show that by using a receiver horn antenna, the maximum received power at 92 GHz is −37.3 dBm at a communication distance of 1 m. The transmitter is capable of providing ±25° beam steering with respect to boresight and 20° half-power beamwidth at 90 GHz. The total power consumption of the transmitter front end is 656 mW.
european microwave integrated circuits conference | 2015
Dristy Parveg; Ali Vahdati; Mikko Varonen; Denizhan Karaca; Mikko Kärkkäinen; Kari Halonen
Analog Integrated Circuits and Signal Processing | 2015
Ali Vahdati; Dristy Parveg; Mikko Varonen; Mikko Kärkkäinen; Denizhan Karaca; Kari Halonen
international microwave symposium | 2018
Mikko Varonen; Kieran Cleary; Denizhan Karaca; Kari A. I. Halonerr