English  |  正體中文  |  简体中文  |  Post-Print筆數 : 27 |  Items with full text/Total items : 113318/144297 (79%)
Visitors : 50995564      Online Users : 760
RC Version 6.0 © Powered By DSPACE, MIT. Enhanced by NTU Library IR team.
Scope Tips:
  • please add "double quotation mark" for query phrases to get precise results
  • please goto advance search for comprehansive author search
  • Adv. Search
    HomeLoginUploadHelpAboutAdminister Goto mobile version
    Please use this identifier to cite or link to this item: https://nccur.lib.nccu.edu.tw/handle/140.119/152137


    Title: 台灣微藻固碳科技創新發展研究-以科技創新系統與創新生態系統觀點
    Exploring the Technological Innovation of Microalgae-based Carbon Capture in Taiwan: Perspectives from Technological Innovation System and Innovation Ecosystem
    Authors: 曾鈺婷
    Tseng, Yu-Ting
    Contributors: 柯玉佳
    Ko, Yu-Chia
    曾鈺婷
    Tseng, Yu-Ting
    Keywords: 科技創新系統
    創新生態系統
    微藻固碳與固碳後再利用
    Technological innovation system
    Innovation ecosystem
    Microalgae carbon capture, storage and utilization
    Date: 2023
    Issue Date: 2024-07-01 13:31:36 (UTC+8)
    Abstract: 本研究著眼於台灣微藻固碳技術的創新發展,從科技創新系統(Technological Innovation System, TIS)和創新生態系統(Innovation Ecosystem)的視角進行探討,分析了技術發展、知識轉化以及商業化過程中的關鍵互動和合作模式,探討科技創新系統如何更好地協助創新生態系統的發展,並從每一個功能性活動分別創造了什麼價值,連結到企業如何把產業生態系建立起來,以創造對自身有利的發展環境。
    透過文獻回顧及質性研究法針對我國工研院微藻研發團隊和成功大學微藻研發團隊的深度訪談,嘗試描繪產學研三方的當前發展,從而評估和辨識創新系統中的互動、合作模式及其對技術推進的影響。研究發現,科技創新系統與創新生態系統的整合,形成了一個動態互補的創新網絡,使技術創新更有效地轉化為市場產品。 結論指出,台灣應持續加強其科技創新系統,特別是在研發到商業化的轉化過程中,增強創新生態系統中各方的協作與互動,以促進微藻固碳技術的產業化和市場化。
    This study focuses on the innovative development of microalgae carbon capture technology in Taiwan, explored from the perspectives of the Technological Innovation System (TIS) and the Innovation Ecosystem. It analyzes the key interactions and cooperation models in the processes of technology development, knowledge transformation, and commercialization, exploring how the technological innovation system can better assist the development of the innovation ecosystem. It also examines the value created by each system building activity, linking this to how companies build ecosystems to create favorable development environments for themselves.
    Through literature review and qualitative research methods, including in-depth interviews with the microalgae research teams of the Industrial Technology Research Institute and National Cheng Kung University, the study attempts to depict the current development among academia, industry, and research institutions, thereby assessing and identifying the interactions and cooperation models within the innovation system and their impact on technological advancement.
    The findings reveal that the integration of the technological innovation system and the innovation ecosystem forms a dynamic and complementary innovation network, making technological innovation more effectively transform into commercial products. The conclusion points out that Taiwan should continue to strengthen its technological innovation system, particularly in the transition from research and development to commercialization, enhancing the collaboration and interaction among various parties within the innovation ecosystem to promote the industrialization and marketization of microalgae carbon capture and utilization technology.
    Reference: 一、中文部分
    周興平。2020。Environmental Innovation and Societal Transitions 16 (2015)
    51–64 。國立清華大學科技管理研究所博士論文。
    張書豪。2014。創新生態系統下研發成果產業化模型與實踐機制。科技管理學刊 第十
    九卷第三期 103年9月 1-32
    楊佩芬。2019。微藻生質能源基因工程技術發展
    盧文章、王振諧。2009。藻類培養之光合生物反應器發展現況。化工資訊與商情 77
    期20-25
    潘淑滿。2022。質性研究:理論與應用(第二版)
    二、英文部分
    Adner, R., & Kapoor, R. (2010). Value creation in innovation ecosystems: How the structure
    of technological interdependence affects firm performance in new technology
    generations. Strategic management journal, 31(3), 306-333.
    Adner, R. (2012). The wide lens: A new strategy for innovation(Vol. 34, No. 9). Penguin Uk.
    Adner, R. (2017). Ecosystem as structure: An actionable construct for strategy. Journal of
    management, 43(1), 39-58.
    Bergek, A., Jacobsson, S., Carlsson, B., Lindmark, S., & Rickne, A. (2005, June). Analyzing
    the dynamics and functionality of sectoral innovation systems–a manual. In DRUID
    tenth anniversary summer conference (pp. 27-29).
    Bergek, A., Jacobsson, S., Carlsson, B., Lindmark, S., & Rickne, A. (2008). Analyzing the
    functional dynamics of technological innovation systems: A scheme of analysis.
    Research policy, 37(3), 407-429.
    Bergek, A., Hekkert, M., Jacobsson, S., Markard, J., Sandén, B., & Truffer, B. (2015).
    Technological innovation systems in contexts: Conceptualizing contextual structures
    and interaction dynamics. Environmental innovation and societal transitions, 16, 51-
    64.
    Bogdan, R. C., & Biklen, S. K. (1982). Qualitative research for education: An introduction to
    theory and methods.
    Breslin, D., Kask, J., Schlaile, M., & Abatecola, G. (2021). Developing a coevolutionary
    account of innovation ecosystems. Industrial Marketing Management, 98, 59-68.
    Carlsson, B., & Stankiewicz, R. (1991). On the nature, function and composition of
    technological systems. Journal of evolutionary economics, 1, 93-118.
    Carlsson, B., Jacobsson, S., Holmén, M., & Rickne, A. (2002). Innovation systems: analytical
    and methodological issues. Research policy, 31(2), 233-245.
    Denzin, N. K., & Lincoln, Y. S. (2011). The SAGE Handbook of Qualitative Research
    Granstrand, O., & Holgersson, M. (2020). Innovation ecosystems: A conceptual review and a
    new definition. Technovation, 90, 102098.
    Hellsmark, H., & Jacobsson, S. (2009). Opportunities for and limits to academics as system
    builders—the case of realizing the potential of gasified biomass in Austria. Energy
    Policy, 37(12), 5597-5611.
    Ho, S. H., Chen, C. Y., Lee, D. J., & Chang, J. S. (2011). Perspectives on microalgal CO2-
    emission mitigation systems—a review. Biotechnology advances, 29(2), 189-198.
    Iansiti, M., & Levien, R. (2004). Strategy as ecology. Harvard business review, 82(3), 68-78.
    Iansiti, M, & Levien, R. (2004b), “The Keystone advantage: What the new dynamics of
    business ecosystems mean or strategy, innovation, and sustainability”, Boston MA:
    Harvard Business School Press.
    Jacobsson, S., & Johnson, A. (2000). The diffusion of renewable energy technology: an
    analytical framework and key issues for research. Energy policy, 28(9), 625-640.
    Jacobides, M. G., Knudsen, T., & Augier, M. (2006). Benefiting from innovation: Value
    creation, value appropriation and the role of industry architectures. Research policy,
    35(8), 1200-1221.
    James F. Moore.(1993) Predators and prey: a new ecology of competition. Harv Bus Rev.
    1993 May-Jun;71(3):75-86
    James F. Moore.(2006). Business ecosystems and the view from the firm, The Antitrust
    Bulletin:Vol.51, No.1/Spring 2006 31-75
    Kebede, K. Y., & Mitsufuji, T. (2017). Technological innovation system building for
    diffusion of renewable energy technology: A case of solar PV systems in Ethiopia.
    Technological Forecasting and Social Change, 114, 242-253.
    Musiolik, J., & Markard, J. (2011). Creating and shaping innovation systems: Formal
    networks in the innovation system for stationary fuel cells in Germany. Energy
    Policy, 39(4), 1909-1922.
    Neuman, W.L. (1997) Social Research Methods: Qualitative and Quantitative Approaches.
    Scaringella, L., & Radziwon, A. (2018). Innovation, entrepreneurial, knowledge, and
    business ecosystems: Old wine in new bottles?. Technological Forecasting and Social
    Change, 136, 59-87.
    Shaw, D. R., & Allen, T. (2018). Studying innovation ecosystems using ecology theory.
    Technological Forecasting and Social Change, 136, 88-102.
    Silverman, L. (1985). The Ideological Mediation of Party‐political Responses to Social
    Change. European Journal of Political Research, 13(1), 69-93.
    Singh, J., & Dhar, D. W. (2019). Overview of carbon capture technology: microalgal
    biorefinery concept and state-of-the-art. Frontiers in Marine Science, 6, 29.
    Teece, D. J. (2007). Explicating dynamic capabilities: the nature and microfoundations of
    (sustainable) enterprise performance. Strategic management journal, 28(13), 1319-
    1350.
    de Vasconcelos Gomes, L. A., Salerno, M. S., Phaal, R., & Probert, D. R. (2018). How
    entrepreneurs manage collective uncertainties in innovation ecosystems.
    Technological Forecasting and Social Change, 128, 164-185.
    Weil, H. B., Sabhlok, V. P., & Cooney, C. L. (2014). The dynamics of innovation
    ecosystems: A case study of the US biofuel market. Energy strategy reviews, 3, 88-
    99.
    三、網路資料
    李幸宜。以減碳創造新收益、新經濟 微藻變身生質金礦。工業技術與資訊月刊。最後
    檢索日期:2023年2月20日,檢自:
    https://www.itri.org.tw/ListStyle.aspxDisplayStyle=18_content&SiteID=1&
    MmmID=1036452026061075714&MGID=711302240625714532
    李洵穎。從排碳大戶到養生專家 微藻固碳助水泥業走永續之路。 工業技術與資訊月
    刊332期2019年08月號。最後檢索日期:2023年8月20日。檢自:
    https://www.itri.org.tw/ListStyle.aspx?DisplayStyle=18_content&SiteID=1&MmmID=1036452026061075714&MGID=1036250477610254775
    許旭昇。科研成果產業化,他們怎麼做? 最後檢索日期:2023年3月1號。檢自:
    https://tpl.ncl.edu.tw/NclService/pdfdownloadfilePath=lV8OirTfsslWcCxIpLbUfpBFnr50DaCpDeDnz5UaYHEkegzhDkBAsvsxgJXR66er&imgType=Bn5sH4BGpJw=&key=ymcTTlMn-wwaY8ZRIYlwe1Uj6FvspNS8PB2d7g6_hfMeVVU9OyINO4qBZJhLTxWd&xmlId=0006960531
    張嘉修、陳俊延、林志生、楊勝仲、周德珍、郭子禎、顏宏偉、李澤民。2015。二氧
    化碳再利用 ─ 微藻養殖。科學發展 2015 年 6 月│ 510 期
    賴允政。2020。微藻的減碳循環經濟,檢自:https://www.grb.gov.tw/search/report/13381777
    闕壯群。2009。微藻類固碳工程。科學發展 2009年1月,433期
    工研院技術研究院官網。【碳捕捉、利用與封存減碳解決方案】綠色捕手-微藻固碳
    及利用技術。檢自:https://www.itri.org.tw/ListStyle.aspx?DisplayStyle=01_content&SiteID=1&MmmID=1162127241711441152&MGID=1162130537112316003 最後檢索日期:2024/05/25
    行政院國家科學委員會專題研究計畫成果報告,微藻生質能源整合型技術開發研究成
    果報告。2009。計畫主持人:張嘉修
    《臺灣2050淨零排放路徑及策略總說明》。2022。國家發展委員會、行政院環境保
    護署、經濟部、科技部、交通部、內政部、行政院農業委員會、金融監督管理
    委員會
    研究機構能源科技專案 103 年度執行報告,微藻綠能科技發展計畫。2014。經濟部財
    團法人食品工業發展研究所
    研究機構能源科技專案 105 年度執行報告,永續生質能源關鍵技術研發計畫。2017。
    經濟部財團法人工業技術研究院
    國立成功大學新聞中心,成大「新型態藻菌廢水處理技術」傳統與高科技產業均青
    睞。2019。網址:https://news-secr.ncku.edu.tw/p/404-1037-197992.php
    國立成功大學能源科技與策略研究中心。最後檢索日期:2023/08/28
    網址:https://cets.ncku.edu.tw/index.php?inter=technology&id=105&tabid=175
    國立成功大學能源科技與策略研究中心,微藻固碳及水淨化。網址:
    https://cets.ncku.edu.tw/index.php?inter=technology&id=105&tabid=167。最後檢索日期:2023/08/28
    節約能源專區官網。2008。取自台灣電力公司 ,最後檢索日期:2023/08/28
    網址:https://www.energypark.org.tw/news/news/15-promotion-activities/282-2018-08-24%2010-29-16-282.html
    台泥公司永續報告書。2021。台泥公司官網
    台泥公司永續報告書。2022。台泥公司官網
    中鋼公司永續報告書。2022。中鋼公司官網
    World Energy Outlook 2022, WEO2022,International Energy Agency, IEA
    Description: 碩士
    國立政治大學
    科技管理與智慧財產研究所
    110364119
    Source URI: http://thesis.lib.nccu.edu.tw/record/#G0110364119
    Data Type: thesis
    Appears in Collections:[科技管理與智慧財產研究所] 學位論文

    Files in This Item:

    File Description SizeFormat
    411901.pdf2664KbAdobe PDF0View/Open


    All items in 政大典藏 are protected by copyright, with all rights reserved.


    社群 sharing

    著作權政策宣告 Copyright Announcement
    1.本網站之數位內容為國立政治大學所收錄之機構典藏,無償提供學術研究與公眾教育等公益性使用,惟仍請適度,合理使用本網站之內容,以尊重著作權人之權益。商業上之利用,則請先取得著作權人之授權。
    The digital content of this website is part of National Chengchi University Institutional Repository. It provides free access to academic research and public education for non-commercial use. Please utilize it in a proper and reasonable manner and respect the rights of copyright owners. For commercial use, please obtain authorization from the copyright owner in advance.

    2.本網站之製作,已盡力防止侵害著作權人之權益,如仍發現本網站之數位內容有侵害著作權人權益情事者,請權利人通知本網站維護人員(nccur@nccu.edu.tw),維護人員將立即採取移除該數位著作等補救措施。
    NCCU Institutional Repository is made to protect the interests of copyright owners. If you believe that any material on the website infringes copyright, please contact our staff(nccur@nccu.edu.tw). We will remove the work from the repository and investigate your claim.
    DSpace Software Copyright © 2002-2004  MIT &  Hewlett-Packard  /   Enhanced by   NTU Library IR team Copyright ©   - Feedback