S. K. Yong, P. Xia, and A. Valdes-garcia, 60 GHz Technology for Gbps WLAN and, 2010.

T. S. Rappaport, J. N. Murdock, and F. Gutierrez, State of the art in 60-GHz integrated circuits and systems for wireless communications, Proceedings of the IEEE, vol.99, issue.8, pp.1390-1436, 2011.

A. M. Niknejad, Siliconization of 60 GHz, IEEE Microwave Magazine, vol.11, issue.1, pp.78-85, 2010.

A. Osseiran, F. Boccardi, V. Braun, K. Kusume, P. Marsch et al., Scenarios for 5G mobile and wireless communications: The vision of the METIS project, IEEE Communications Magazine, vol.52, issue.5, pp.26-35, 2014.

M. Iwamura, NGMN View on 5G Architecture, 2015 IEEE 81st Vehicular Technology Conference (VTC Spring), pp.1-5, 2015.

F. Evaluation, Next Generation 5G Wireless Networks : A Comprehensive Survey, Ieee Communications Surveys & Tutorials, vol.18, issue.3, 2005.

T. K. Vu, C. F. Liu, M. Bennis, M. Debbah, M. Latva-aho et al., Ultra-Reliable and Low Latency Communication in mmWave-Enabled Massive MIMO Networks, IEEE Communications Letters, vol.21, issue.9, p.2017
URL : https://hal.archives-ouvertes.fr/hal-01778654

M. Shafi, A. F. Molisch, P. J. Smith, T. Haustein, P. Zhu et al., 5G: A tutorial overview of standards, trials, challenges, deployment, and practice, IEEE Journal on Selected Areas in Communications, vol.35, issue.6, pp.1201-1221, 2017.

A. Gupta and R. K. Jha, A Survey of 5G Network: Architecture and Emerging Technologies, IEEE Access, vol.3, pp.1206-1232, 2015.

Y. Niu, Y. Li, D. Jin, L. Su, and A. V. Vasilakos, A survey of millimeter wave communications (mmWave) for 5G: opportunities and challenges, Wireless Networks, vol.21, issue.8, pp.2657-2676, 2015.

, ITU-R P.676-11 Attenuation by atmospheric gases -P Series Radiowave propagation, International Telecommunication Union, Tech. Rep, 2016.

U. Basaran, N. Wieser, G. Feiler, and M. Berroth, Small-signal and high-frequency noise modeling of SiGe HBTs, IEEE Transactions on Microwave Theory and Techniques, vol.53, issue.3, pp.919-928, 2005.

D. Xiaojuen-yuan, L. Lie, J. Larson, J. Blonski, M. Gross et al., RF linearity study of SiGe HBTs for low power RFIC design. I, 2002 3rd International Conference on Microwave and Millimeter Wave Technology, pp.70-73, 2002.

Q. Cai, J. Gerber, U. Rohde, and T. Daniel, HBT high-frequency modeling and integrated parameter extraction, IEEE Transactions on Microwave Theory and Techniques, vol.45, issue.12, pp.2493-2502, 1997.

R. Van-der-toorn, J. Paasschens, and W. J. Kloosterman, The Mextram Bipolar Transistor Model, 2008.

M. Andersson, Z. Xia, P. Kuivalainen, and H. Pohjonen, Compact Si1-xGex/Si heterojunction bipolar transistor model for device and circuit simulation, IEE Proceedings -Circuits, Devices and Systems, vol.142, p.1, 1995.

R. L. Geiger, P. E. Allen, and N. R. Strader, VLSI design techniques for analog and digital circuits, ser. McGraw-Hill series in electrical engineering, vol.23, 1992.

C. Saint and J. Saint, IC Layout Basics : A Practical Guide: A Practical Guide, ser. Telecommunications. Mcgraw-hill, 2001.

I. Wolff, Microstrip bandpass filter using degenerate modes of a microstrip ring resonator, Electronics Letters, vol.8, issue.12, p.302, 1972.

U. K. Karacaoglu, I. R. Robertson, and M. G. Guglielmi, A dual-mode microstrip ring resonator filter with active devices for loss compensation, IEEE MTT-S International Microwave Symposium Digest, pp.189-192, 1993.

L. Zhu, A joint field/circuit model of line-to-ring coupling structures and its application to the design of microstrip dual-mode filters and ring resonator circuits, IEEE Transactions on Microwave Theory and Techniques, vol.47, issue.10, pp.1938-1948, 1999.

L. Hsieh and K. Chang, Dual-mode elliptic-function bandpass filter using one single patch resonator without coupling gaps, Electronics Letters, vol.36, issue.24, p.2022, 2000.

J. Hong and M. Lancaster, Bandpass characteristics of new dual-mode microstrip square loop resonators, Electronics Letters, vol.31, issue.11, pp.891-892, 1995.

S. Luo, L. Zhu, and S. Sun, Compact dual-mode triple-band bandpass filters using three pairs of degenerate modes in a ring resonator, IEEE Transactions on Microwave Theory and Techniques, vol.59, issue.5, pp.1222-1229, 2011.

K. Chang and L. H. Hsieh, Microwave Ring Circuits and Related, 2004.

I. Wolff and N. Knoppik, Microstrip ring resonator and dispersion measurement on microstrip lines, Electronics Letters, vol.7, p.779, 1971.

C. Technology, Millimeter-Wave Bandpass Filters by Standard, IEEE Electron Device Letters, vol.28, issue.3, pp.220-222, 2007.

H. Cheng-ying, C. Chu-yu, and C. Huey-ru, A 60-GHz Millimeter-Wave Bandpass Filter Using 0.18$\mu$m CMOS Technology, IEEE Electron Device Letters, vol.29, issue.3, pp.246-248, 2008.

L. Nan, K. Mouthaan, Y. Z. Xiong, J. Shi, S. C. Rustagi et al., Design of 60-and 77-GHz narrow-bandpass filters in CMOS technology, IEEE Transactions on Circuits and Systems II: Express Briefs, vol.55, issue.8, pp.738-742, 2008.

C. Y. Hsu, C. Y. Chen, and H. R. Chuang, 70 GHz folded loop dual-mode bandpass filter fabricated using 0.18 µm standard CMOS technology, IEEE Microwave and Wireless Components Letters, vol.18, issue.9, pp.587-589, 2008.

P. Huang, J. Chang, Y. Lin, and S. Lu, Micromachined V-band CMOS bandpass filter with 2dB insertion loss, Electronics Letters, vol.45, issue.2, p.100, 2009.

M. Lu, J. Chang, L. Lu, and Y. Lin, Miniature 60-GHz-band bandpass filter with 2.55-dB insertion-loss using standard 0.13$\mu$m CMOS technology, 2009 International Symposium on VLSI Design, Automation and Test, pp.92-95, 2009.

Y. C. Hsiao and C. H. Tseng, Design of 60 GHz CMOS bandpass filters using complementary-conducting strip transmission lines, IEEE MTT-S International Microwave Symposium Digest, issue.43, pp.1712-1715, 2010.

S. C. Chang, Y. M. Chen, S. F. Chang, Y. H. Jeng, C. L. Wei et al., Compact millimeter-wave CMOS bandpass filters using grounded pedestal stepped-impedance technique, IEEE Transactions on Microwave Theory and Techniques, vol.58, issue.12, pp.3850-3858, 2010.

H. Lu, C. Yeh, S. Wei, and Y. Chou, 60 GHz CPW Dual-Mode Rectangular Ring Bandpass Filter U sing Integrated Passive Devices Process, 2010 Asia-Pacific Microwave Conference, pp.1883-1886, 2010.

R. Pokharel and X. Liu, A high selectivity, low insertion loss 60GHz-band on-chip 4-pole band pass filter for millimeter wave CMOS SoC, 2011 European Microwave Integrated Circuits Conference (EuMIC), no. October, pp.660-663, 2011.

Y. Chen and S. Chang, A ultra-compact 77-GHz CMOS bandpass filter using grounded pedestal stepped-impedance stubs, pp.194-197, 2011.

H. Lu, C. Yeh, and S. Wei, Miniaturised 60 GHz rectangular ring bandpass filter in 90 nm CMOS technology, Electronics Letters, vol.47, issue.7, pp.448-450, 2011.

A. L. Franc, E. Pistono, D. Gloria, and P. Ferrari, High-performance shielded coplanar waveguides for the design of CMOS 60-GHz bandpass filters, IEEE Transactions on Electron Devices, vol.59, issue.5, pp.1219-1226, 2012.
URL : https://hal.archives-ouvertes.fr/hal-01025025

Y. Chen, L. Yeh, and H. Chuang, Design of ultra-compact 60-GHz millimeterwave CMOS on-chip bandpass filter with two controllable transmission zeros, p.2014

, Asia-Pacific Microwave Conference, pp.935-937, 2014.

V. N. Vanukuru, N. Godavarthi, and A. Chakravorty, Miniaturized millimeter-wave narrow bandpass filter in 0.18 μm CMOS technology using spiral inductors and inter digital capacitors, 2014 International Conference on Signal Processing and Communications (SPCOM), pp.1-4, 2014.

P. K. Chuang, L. K. Yeh, and H. R. , Design of 60-GHz compact and low-insertion loss stepped-impedance coupled-line CMOS on-chip bandpass filter, 2014 Asia-Pacific Microwave Conference, pp.6-8, 2014.

P. Rynkiewicz, A. L. Franc, F. Coccetti, M. Wietstruck, M. Kaynak et al., A compact millimeter-wave dual-mode ring filter using loaded capacitances in CMOS 0.25µm technology, IEEE MTT-S International Microwave Symposium Digest, pp.4-7, 2016.

A. S. El-hameed, A. Barakat, A. B. Abdel-rahman, A. Allam, and R. K. Pokharel, Ultracompact 60-GHz CMOS BPF Employing Broadside-Coupled Open-Loop Resonators, IEEE Microwave and Wireless Components Letters, vol.27, issue.9, pp.818-820, 2017.

K. Mouthaan, X. Lu, F. Hu, Z. Hu, and A. Taslimi, Status and design challenges of 60 GHz passive bandpass filters in standard CMOS, 2013 IEEE International Wireless Symposium, IWS 2013, pp.3-6, 2013.

S. Sun, A Dual-Band Bandpass Filter Using a Single Dual-Mode Ring Resonator, IEEE Microwave and Wireless Components Letters, vol.21, issue.6, pp.298-300, 2011.

C. D. Motchenbacher and J. A. Connelly, Low noise electronic system design, 1993.

S. A. Mass, Noise in linear and nonlinear circuits, ser. Artech House microwave library, 2005.

S. Voinigescu, High-Frequency Integrated Circuits, ser. The Cambridge RF and Microwave Engineering Series, 2013.

T. Das, Practical Considerations for Low Noise Amplifier Design, pp.1-10, 2013.

S. Gunnarsson, C. Karnfelt, H. Zirath, R. Kozhuharov, D. Kuylenstierna et al., Highly integrated 60 GHz transmitter and receiver MMICs in a GaAs pHEMT technology, IEEE Journal of Solid-State Circuits, vol.40, issue.11, pp.2174-2186, 2005.

C. W. Wang, Y. C. , Y. Cho, C. L. Lin, H. W. Wang et al., A 60GHz transmitter with integrated antenna in 0.18/spl mu/m SiGe BiCMOS technology, IEEE International Solid State Circuits Conference -Digest of Technical Papers, vol.52, issue.2, pp.305-312, 2006.

S. K. Reynolds, B. A. Floyd, U. R. Pfeiffer, T. Beukema, J. Grzyb et al., A Silicon 60-GHz Receiver and Transmitter Chipset for Broadband Communications, IEEE Journal of Solid-State Circuits, vol.41, issue.12, pp.2820-2831, 2006.

J. Lee, Y. Chen, and Y. Huang, A low-power low-cost fully-integrated 60-GHz transceiver system with OOK modulation and on-board antenna assembly, IEEE Journal of Solid-State Circuits, vol.45, issue.2, pp.264-275, 2010.

S. Glisic, K. Schmalz, F. Herzel, R. Wang, M. Elkhouly et al., A fully integrated 60 GHz transmitter front-end in SiGe BiCMOS technology, 2011 IEEE 11th Topical Meeting on Silicon Monolithic Integrated Circuits in RF Systems, SiRF 2011 -Digest of Papers, pp.149-152, 2011.

L. Kuang, B. Chi, H. Jia, Z. Ye, W. Jia et al., Co-design of 60-GHz wideband frontend IC with on-chip T/R switch based on passive macro-modeling, IEEE Transactions on Microwave Theory and Techniques, vol.62, issue.11, pp.2743-2754, 2014.

W. Winkler, J. Borngraber, H. Gustat, and F. Korndorfer, 60 GHz transceiver circuits in SiGe:C BiCMOS technology, Proceedings of the 30th European Solid-State Circuits Conference, pp.83-86, 2004.

M. Gordon and S. Voinigescu, An inductor-based 52-GHz 0.18 µm SiGe HBT cascode LNA with 22 dB gain, Proceedings of the 30th European Solid-State Circuits Conference, pp.287-290, 2004.

W. Winkler, 60 GHz circuits in SiGe HBT technology, IEEE Compound Semiconductor Integrated Circuit Symposium, 2005. CSIC '05, pp.109-112, 2005.

Y. Sun, J. Borngraber, F. Herzel, and W. Winkler, A fully integrated 60 GHz LNA in SiGe:C BiCMOS technology, Proceedings of the Bipolar/BiCMOS Circuits and Technology Meeting, pp.14-17, 2005.

B. A. Floyd, S. K. Reynolds, U. R. Pfeiffer, T. Zwick, T. Beukema et al., SiGe bipolar transceiver circuits operating at 60 GHz, IEEE Journal of Solid-State Circuits, vol.40, issue.1, pp.156-167, 2005.

M. Gordon, T. Yao, and S. Voinigescu, 65-GHz receiver in SiGe BiCMOS using monolithic inductors and transformers, Digest of Papers. 2005 Topical Meeting on Silicon Monolithic Integrated Circuits in RF Systems, pp.265-268, 2005.

T. Yao, L. Tchoketch-kebir, O. Yuryevich, M. Gordon, and S. Voinigescu, 65GHz Doppler Sensor with On-Chip Antenna in 0.18µm SiGe BiCMOS, pp.1493-1496, 2006.

B. Razavi, A 60-GHz CMOS Receiver Front-End, IEEE Journal of Solid-State Circuits, vol.41, issue.1, pp.17-22, 2006.

T. Yao, M. Q. Gordon, K. K. Tang, K. H. Yau, M. Yang et al., Algorithmic Design of CMOS LNAs and PAs for 60-GHz Radio, IEEE Journal of Solid-State Circuits, vol.42, issue.5, pp.1044-1057, 2007.

R. R. Severino, T. Taris, Y. Deval, and J. Begueret, A transformer-based 60GHz CMOS LNA for low voltage applications, 2007 IEEE International Workshop on Radio-Frequency Integration Technology, pp.62-65, 2007.

J. Alvarado, K. T. Kornegay, D. Dawn, S. Pinel, and J. Laskar, 60-GHz LNA using a hybrid transmission line and conductive path to ground technique in silicon, Digest of Papers -IEEE Radio Frequency Integrated Circuits Symposium, pp.685-688, 2007.

E. Cohen, S. Ravid, and D. Ritter, An ultra low power LNA with 15dB gain and 4.4db NF in 90nm CMOS process for 60 GHz phase array radio, Digest of Papers -IEEE Radio Frequency Integrated Circuits Symposium, pp.61-64, 2008.

R. R. Severino, T. Taris, Y. Deval, D. Belot, and J. B. Begueret, A SiGe:C BiCMOS LNA for 60GHz band applications, Proceedings of the IEEE Bipolar/BiCMOS Circuits and Technology Meeting, pp.51-54, 2009.
URL : https://hal.archives-ouvertes.fr/hal-00401260

, A SiGe:C BiCMOS LNA for 94GHz band applications, Proceedings of the IEEE Bipolar/BiCMOS Circuits and Technology Meeting, pp.188-191, 2010.

K. Kang, J. Brinkhoff, and F. Lin, A 60 GHz LNA with 18.6 dB gain and 5.7 dB NF in 90nm CMOS, 2010 International Conference on Microwave and Millimeter Wave Technology, ICMMT 2010, pp.164-167, 2010.

Y. Sun and C. J. Scheytt, Low-power 60GHz receiver front-end with a variable-gain LNA in SiGe BiCMOS technology, 2010 IEEE Bipolar/BiCMOS Circuits and Technology Meeting (BCTM). IEEE, pp.192-195, 2010.

C. Wang, Y. Hao, Z. Haiying, K. Kang, and Z. Tang, A 60GHz LNA with 4.7dB NF and 18dB gain using interstage impedance matching technique in 90nm CMOS, 2011 IEEE International Conference on Microwave Technology & Computational Electromagnetics, pp.270-273, 2011.

M. Khanpour, K. W. Tang, P. Garcia, and S. P. Voinigescu, A Wideband W-Band Receiver Front-End in 65-nm CMOS, IEEE Journal of Solid-State Circuits, vol.43, issue.8, pp.1717-1730, 2008.

Y. Chai, L. Li, and T. Cui, Design of a 60 GHz LNA with 20 dB gain and 12 GHz BW in 65 nm LP CMOS, IEEE MTT-S International Microwave Workshop Series on Millimeter Wave Wireless Technology and Applications, IMWS 2012 -Proceeding, pp.142-145, 2012.

S. Laha, S. Kaya, A. Kodi, D. Ditomaso, and D. Matolak, A 60 GHz tunable LNA in 32 nm double gate MOSFET for a wireless NoC architecture, 2013 IEEE 14th Annual Wireless and Microwave Technology Conference, pp.1-4, 2013.

L. Li, X. Niu, L. Chen, Y. Chai, T. Zhang et al., Design of 60GHz RF transceiver in CMOS: Challenges and recent advances, China Communications, vol.11, issue.6, pp.32-41, 2014.

L. Zhang, C. Zhou, H. Wang, Y. Wang, H. Qian et al., A fully integrated 60GHz four channel CMOS receiver with 7GHz ultra-wide bandwidth for IEEE 802.11ad standard, China Communications, vol.11, issue.6, pp.42-50, 2014.

K. Hadipour, A. Ghilioni, A. Mazzanti, M. Bassi, and F. Svelto, A 40GHz to 67GHz bandwidth 23dB gain 5.8dB maximum NF mm-Wave LNA in 28nm CMOS, Digest of Papers -IEEE Radio Frequency Integrated Circuits Symposium, pp.327-330, 2015.

S. Zihir and G. M. Rebeiz, A wideband 60 GHz LNA with 3.3 dB minimum noise figure, IEEE MTT-S International Microwave Symposium Digest, pp.1969-1971, 2017.

Y. Yu, H. Liu, Y. Wu, and K. Kang, A 54.4-90 GHz Low-Noise Amplifier in 65-nm CMOS, 2017.
URL : https://hal.archives-ouvertes.fr/in2p3-00509723

S. P. Voinigescu, M. C. Maliepaard, J. L. Showell, G. E. Babcock, D. Marchesan et al., A scalable high-frequency noise model for bipolar transistors with application to optimal transistor sizing for low-noise amplifier design, IEEE Journal of Solid-State Circuits, vol.32, issue.9, pp.1430-1438, 1997.

S. A. Maas, Microwave Mixers, 1986.