1. Hashemi, H. and A. Hajimiri, "Concurrent multiband low-noise amplifiers --- Theory, design, and applications," IEEE Trans. Microw. Theory Tech., Vol. 50, No. 1, 288-301, 2002.
doi:10.1109/22.981282
2. Perumana, B. G., J. C. Zhan, S. S. Taylor, B. R. Carlton, and J. Laskar, "Resistive-feedback CMOS low-noise amplifiers for multiband applications ," IEEE Trans. Microw. Theory Tech., Vol. 56, No. 5, 1228-1225, 2008.
doi:10.1109/TMTT.2008.920181
3. Phansathitwong, K., H. Sjoland, and P. Andreani, "Low power multi-band CMOS receiver front-end," Proc. PRIME Conf., 1-4, 2010.
4. Okazaki, H., K. Kawai, A. Fukuda, T. Furuta, and S. Narahashi, "Reconfigurable amplifier towards enhanced selectivity of future multi-band mobile terminals ," International Microwave Workshop Series on RF Front-ends for Software Defined and Cognitive Radio Solutions , 1-4, 2010.
doi:10.1109/IMWS.2010.5441012
5. Malmqvist, R., P. Rantakari, C. Samuelsson, M. Lahti, S. Cheng, and J. Saijets, "RF MEMS based impedance matching networks fortunable multi-band microwave low noise amplifiers," Proc. International Semiconductor Conf., 303-306, 2009.
6. Phan, A.-T. and R. Farrell, "Reconfigurable multiband multimode LNA for LTE/GSM, WiMAX, and IEEE 802.11.a/b/g/n," Proc. Electronics, Circuits, and Systems Conf., 78-81, 2010.
7. Tzeng, F., A. Jahanian, and P. Heydari, "A multiband inductor-reuse CMOS low-noise amplifier," IEEE Transactions on Circuits and Systems --- II: Express Briefs, Vol. 55, No. 3, 209-213, 2008.
doi:10.1109/TCSII.2008.918922
8. Lu, L.-H., H.-H. Hsieh, and Y.-S. Wang, "A compact 2.4/5.2-GHz CMOS dual-band low-noise amplifier," IEEE Microwave and Wireless Components Letters, Vol. 15, No. 10, 685-687, Oct. 2005.
doi:10.1049/el:20072695
9. Chang, S.-F., W.-L. Chen, and C.-H. Hsu, "CMOS dual-band variable-gain amplifier for 3G-WCDMA and WLAN dual-mode RF receivers," Electronics Letters, Vol. 43, No. 2, 102-103, Jan. 2007.
doi:10.2528/PIERC10090201
10. Li, J.-Y., W.-J. Lin, M.-P. Houng, and L.-S. Chen, "A compact wideband matching 0.18-μm CMOS UWB low-noise amplifier using active feedback technique ," Progress In Electromagnetics Research C, Vol. 16, 161-169, 2010.
doi:10.1049/el.2009.3052
11. Hsieh, J.-Y., T. Wang, and S.-S. Lu, "Wideband low-noise amplifier by LC load-reusing technique," Electronics Letters, Vol. 45, No. 25, 1280-1281, 2009.
doi:10.2528/PIERC08090903
12. Dorafshan, A. and M. Soleimani, "High-gain CMOS low noise amplifier for ultra wide-band wireless receiver," Progress In Electromagnetics Research C, Vol. 7, 183-191, 2009.
doi:10.1049/el.2010.2121
13. Wang, C.-H., Y.-T. Chiu, and Y.-S. Lin, "3.1 dB NF 20-29 GHz CMOS UWB LNA using a T-match input network," Electronics Letters, Vol. 46, No. 19, 1312-1313, 2010.
doi:10.2528/PIERC09062202
14. Wong, S.-K., F. Kung Wai Lee, S. Maisurah, M. N. B. Osman, and S. J. Hui, "Design of 3 to 5 GHz CMOS low noise amplifier for ultra-wideband (UWB) system ," Progress In Electromagnetics Research C, Vol. 9, 25-34, 2009.
doi:10.1163/156939310791036412
15. Yoon, J., H. Seo, I. Choi, and B. Kim, "Wideband LNA using a negative GM cell for improvement of linearity and noise figure," Journal of Electromagnetic Waves and Applications, Vol. 24, No. 5-6, 619-630, 2010.
doi:10.1109/JSSC.2004.836344
16. Ismail, A. and A. A. Abidi, "A 3-10-GHz low-noise amplifier with wideband LC-ladder matching network," IEEE Journal of Solid-State Circuits, Vol. 39, No. 12, 2269-2277, Dec. 2004.
doi:10.1109/TMTT.2010.2090357
17. Sapone, G. and G. Palmisano, "A 3-10-GHz low-power CMOS low-noise amplifier for ultra-wideband communication," IEEE Trans. Microw. Theory Tech., Vol. 59, No. 3, 678-686, Mar. 2011.
doi:10.1109/TMTT.2010.2090357
18. Kao, C.-Y., Y.-T. Chiang, and J.-R. Yang, "A concurrent multi-band low-noise amplifier for WLAN/WiMAX applications," Proc. International Electro. Information Technology Conf., 514-517, 2008.
19. Wang, S. and B.-Z. Huang, "A high-gain CMOS LNA for 2.4/5.2-GHz WLAN applications," Progress In Electromagnetics Research C, Vol. 21, 155-167, 2011.
20. Lin, Y.-T. and S.-S. Lu, "A 2.4/3.5/4.9/5.2/5.7-GHz concurrent multiband low noise amplifier using InGaP/GaAs HBT technology," IEEE Microwave and Wireless Components Letters, Vol. 14, No. 10, 463-465, Oct. 2004.
21. Fagotti, R., A. Cidronali, and G. Manes, "Concurrent hex-band GaN power amplifier for wireless communication systems," IEEE Microwave and Wireless Components Letters, Vol. 21, No. 2, 89-91, 2011.
doi:10.1002/mop.21074
22. Lin, Y.-S. and K.-N. Liao, "A concurrent multiband SiGe LNA for 1.8/1.9-GHz GSM, 2.4/5.2/5.7-GHz WLAN, and 5-7-GHz UWB system applications," Microw. Optical Technol. Lett., Vol. 47, No. 1, 36-41, Oct. 2005.
doi:10.1002/mop.21074
23. Duo, X.-Z., L.-R. Zheng, M. Ismail, and H. Tenhunen, "A concurrent multi-band LNA for multi-standard radios," Proceedings of the International Symposium on Circuits and Systems, 3982-3985, May 2005.
24. Zulfa, H.-A., Y.-H. Chow, and Y. W. Eng, "A low-voltage, fully-integrated (1.5{6) GHz low-noise amplifier in E-mode pHEMT technology for multiband, multimode applications," Proc. European Microwave Integrated Circuits Conf., 306-309, 2008.
doi:10.1109/TMTT.2004.827014
25. Nguyen, T.-K., C.-H. Kim, G.-J. Ihm, M.-S. Yang, and S.-G. Lee, "CMOS low-noise amplifier design optimization techniques," IEEE Trans. Microw. Theory Tech., Vol. 52, No. 5, 1433-1442, 2004.
doi:10.1109/TCSII.2010.2050943
26. He, K.-H., M.-T. Li, C.-M. Li, and J.-H. Tarng, "Parallel-RC feedback low-noise amplifier for UWB applications," IEEE Transactions on Circuits and Systems --- II: Express Briefs, Vol. 57, No. 8, 582-586, 2010.
doi: --- Piped Query must contain either 9 (for journals) or 11 (for books/conference proceedings) pipes.
27. Liu, X., Y. Liu, S. Li, F. Wu, and Y. Wu, "A three-section dual-band transformer for frequency-dependent complex load impedance," IEEE Microwave and Wireless Components Letters, Vol. 19, No. 10, 611-613, 2009.
doi:10.1109/LMWC.2009.2029732