[1]李界木, “氣候變化的原因、後果和證據”, 臺灣民報, Dec. 23, 2019. [online]. Available: https://www.peoplenews.tw/news/1b7742a8-5ab0-4b86-8dc8-2d1ef21ebfb1. [Accessed: May. 15, 2020].
[2]劉哲良, “國際氣候變遷談判與全球減碳目標之演進,” 綠色貿易資訊網, Dec. 29, 2015. [online]. Available: https://www.greentrade.org.tw/zh-hant/knowledge/綠色貿易研究院/國際氣候變遷談判與全球減碳目標之演進. [Accessed: May. 18, 2020].
[3]“影響油價漲跌的6項因素,” Mr.Market市場先生, Oct. 2, 2019. [online]. Available: https://rich01.com/what-is-crude-oil/. [Accessed: May. 19, 2020].
[4]李界木, “氣候變遷與再生能源,” 臺灣民報, Oct. 22, 2019. [online]. Available: https://www.peoplenews.tw/news/61ce7e29-ea31-49e0-a7b3-534503f8eb17. [Accessed: May. 15, 2020].
[5]周鐵軍, “活捉汽車48V系統,” 每日頭條, Jun. 7, 2016. [online]. Available: https://kknews.cc/zh-tw/car/5qr5a8.html. [Accessed: May. 10, 2020].
[6]C. Jiang and G.-P. Du, “Review of Bidirectional DC-DC Converters Applied in On board charger,” School of Electric Power, vol.17, no.4, 2019.
[7]K. Tytelmaier, O. Husev, O. Veligorskyi and R. Yershov, “A review of non-isolated bidirectional dc-dc converters for energy storage systems,” 2016 II International Young Scientists Forum on Applied Physics and Engineering (YSF), 2016.
[8]F.-H. Zhang, C.-H. Zhu, H.-Z. Wang and Y.-Y. Yan, “Bi-Directional DC-DC Converter Topology: Analysis and Evaluation,” Journal of Power Supply, vol.1, no.4, 2003.
[9]F. Caricchi, F. Crescimbini, G. Noia and D. Pirolo, “Experimental study of a bidirectional DC-DC converter for the DC link voltage control and the regenerative braking in PM motor drives devoted to electrical vehicles,” Proceedings of 1994 IEEE Applied Power Electronics Conference and Exposition - ASPEC'94, 1994.
[10]T. W. Kang, C. W. Kim, Y. S. Suh, H. C. Park, B. G. Kang and D. G Kim, “A Design and Control of Bi-directional Non-isolated DC-DC Converter for Rapid Electric Vehicle Charging System,” 2012 Twenty-Seventh Annual IEEE Applied Power Electronics Conference and Exposition (APEC), 2003.
[11]吳義利(2018)。切換式電源轉換器:原理與實用設計技術(第三版)。新北市:文笙書局。
[12]L.-Y. Wang, X.-B. Wu and J.-N. Lou, “A Multi-Mode Four-Switch Buck-Boost DC/DC Converter,” 2009 Asia-Pacific Power and Energy Engineering Conference, 2009.
[13]M. Gaboriault and A. Notman, “A high efficiency, noninverting, buck-boost DC-DC converter,” Nineteenth Annual IEEE Applied Power Electronics Conference and Exposition, 2004. APEC '04, pp. 1411-1415, 2004.
[14]C.-M. Young, Y.-S. Cheng, B.-R. Peng, S.-H. Chi and Z.-Z. Yang, “Design and implementation of a high-efficiency bidirectional DC-DC converter,” 2015 IEEE 2nd International Future Energy Electronics Conference (IFEEC), pp. 1-5, 2015.
[15]S. Waffler and J. W. Kolar, “A novel low-loss modulation strategy for high-power bi-directional buck+boost converters,” 2007 7th International Conference on Power Electronics, pp. 889-894, 2007.
[16]S. Waffler, J. Biela and J. W. Kolar, “Output ripple reduction of an automotive multi-phase bi-directional dc-dc converter,” 2009 IEEE Energy Conversion Congress and Exposition, pp. 2184-2190, 2009.
[17]H.-S. Lee and J.-J. Yun, “High-Efficiency Bidirectional Buck–Boost Converter for Photovoltaic and Energy Storage Systems in a Smart Grid,” IEEE Transactions on Power Electronics, vol. 34, no. 5, pp. 4316-4328, 2018.
[18]B. Axelrod, Y. Berkovich and Y. Beck, “Family of universal bidirectional DC–DC converters with an extended voltage gain,” IET Power Electronics, vol. 12, no. 13, pp. 3562-3570, 2019.
[19]S. B. Tank, K. Manavar and N. Adroja, “Non-Isolated Bi-directional DC-DC Converters for Plug-In Hybrid Electric Vehicle Charge Station Application,” Emerging Trends in Computer & Electrical Engineering (ETCEE-2015), pp. 1-9, 2015.
[20]N. B. Dawood, “Review of Different DC to DC Converters Based for Renewable Energy Applications,” International Research Journal of Engineering and Technology (IRJET), pp. 46-50, 2016.
[21]Z.-S. Chen, “PI and Sliding Mode Control of a Cuk Converter,” IEEE Transactions on Power Electronics, vol. 27, no. 8, pp. 3695-3703, 2012.
[22]I.-D. Kim, Y.-H. Lee, B.-H. Min, E.-C. Nho and J.-W. Ahn, “Design of bidirectional PWM Sepic/Zeta DC-DC converter,” 2007 7th International Conference on Power Electronics, pp. 614-619, 2007.
[23]F. A. Himmelstoss and P. A. Wurm, “Simple bi-directional dc-to-dc converter with high input to output voltage ratio,” EPSEC, pp. 1-4, 2002.
[24]W. Phetphimoon and K, Bhumkittipich, “Modeling and simulation of bidirectional half bridge dc-dc converter,” 2016 13th International Conference on Electrical Engineering/Electronics, Computer, Telecommunications and Information Technology (ECTI-CON), pp. 1-6, 2016.
[25]V. V. Subrahmanya and S. Rama Reddy, “A novel ZVS-ZCS bidirectional DC-DC converter for fuel cell and battery application,” 2009 International Conference on Power Electronics and Drive Systems (PEDS), pp. 12-17, 2009.
[26]B. Zhao, Q.-G. Yu and W.-X. Sun, “Extended-Phase-Shift Control of Isolated Bidirectional DC–DC Converter for Power Distribution in Microgrid,” IEEE Transactions on Power Electronics, vol. 27, no. 11, pp. 4667-4680, 2011.
[27]G. Pledl, M. Tauer and D. Buecherl, “Theory of operation, design procedure and simulation of a bidirectional LLC resonant converter for vehicular applications,” 2010 IEEE Vehicle Power and Propulsion Conference, pp. 1-5, 2010.
[28]江博軒, “應用於電動車之輸出電壓可變的數位雙向降壓-升壓轉換器研製, 國立虎尾科技大學電機工程系 碩士學位論文, 2017.[29]楊宗盛, “切換式電源轉換器模型建立與數位化控制器設計,” 國立虎尾科技大學電機工程系 碩士學位論文, 2018.