Bulletin of Chinese Academy of Sciences (Chinese Version)
Keywords
integrated circuit (IC); modernized industrial system; new-quality productivity; new system for mobilizing resources nationwide; mission oriented; context-driven innovation
Document Type
S&T Innovation Leads Modern Industrial System Construction
Abstract
The integrated circuit (IC) industry is highly complex and systematic, and its key core technology breakthroughs are highly dependent on the support of systematic capabilities. The West especially the United States has accelerated the promotion of the “small-yard, high-fence” strategy, the “New Washington Consensus”, the “de-risking”, and other systematic policies to curb China’s rise. China’s IC industry chain is facing extreme risks such as rupture or blockage. Meanwhile, facing the new mission and requirements of Chinese modernization and new-quality productivity, China needs to accelerate the modernization of the IC industry with new development paradigms, new strategies, and new approaches. Based on the theories of new national innovation system, mission-oriented innovation, and context-driven innovation, this study proposes that China need to integrate the dual approaches of “mission-oriented” and “context-driven” to promote the modernization of IC technology system and industrial system from the dual perspectives of “catch-up” and “beyond catch-up”. Policy and practical suggestions are further proposed such as seizing the context-driven innovation opportunity, coordinating the technology, education, and talents, building national-level innovation consortia, strengthening the firm-leading collaborative innovation system, and constructing a glocalized innovation network, which provides theoretical and strategic support for accelerating the modernization of China’s IC industry towards new-quality productivity.
First page
1191
Last Page
1204
Language
Chinese
Publisher
Bulletin of Chinese Academy of Sciences
References
1 郑栅洁. 加快建设以实体经济为支撑的现代化产业体系. 求是, 2023, (13): 57-62.Zheng S J. Accelerate the construction of a modern industrial system supported by the real economy. Qiu Shi, 2023, (13): 57-62. (in Chinese)
2 余江, 陈凤, 张越, 等. 铸造强国重器:关键核心技术突破的规律探索与体系构建. 中国科学院院刊, 2019, 34(3): 339-343.Yu J, Chen F, Zhang Y, et al. Forging pillars of scientific and technological power: Mechanism exploration and system construction for breakthrough of core and key technologies. Bulletin of Chinese Academy of Sciences, 2019, 34(3): 339-343. (in Chinese)
3 陈凯华, 薛泽华, 张超. 国际发展环境变化与我国科技战略选择:历史回顾与未来展望. 中国科学院院刊, 2023, 38(6): 863-874.Chen K H, Xue Z H, Zhang C. Changes in international development environment and China’s choices of S&T strategy: Historical review and future prospects. Bulletin of Chinese Academy of Sciences, 2023, 38(6): 863-874. (in Chinese)
4 渠慎宁, 杨丹辉, 兰明昊. 高端芯片制造存在“小院高墙”吗——理论解析与中国突破路径模拟. 中国工业经济, 2023, (6): 62-80.Qu S N, Yang D H, Lan M H. Does there exist “Small-yard and High-fence” in high-end chip manufacturing: Theoretical analysis and simulation of China’s breakthrough path. China Industrial Economics, 2023, (6): 62-80. (in Chinese)
5 Cui V, Vertinsky I, Wang Y G, et al. Decoupling in international business: The ‘new’ vulnerability of globalization and MNEs’ response strategies. Journal of International Business Studies, 2023, 54: 1562-1576.
6 路风. 面对美国的科技脱钩,中国必须建立集成电路的产业基础. 经济导刊, 2022, (12): 14-20.Lu F. Facing U.S. tech decoupling, China must build an industrial base for integrated circuits. Economic Herald, 2022, (12): 14-20. (in Chinese)
7 张越, 余江, 杨娅, 等. 颠覆性技术驱动的未来产业培育模式与路径研究——美国布局下一代集成电路产业的启示. 中国科学院院刊, 2023, 38(6): 895-906.Zhang Y, Yu J, Yang Y, et al. Cultivation mode and path of future industries driven by disruptive technologies—Enlightenment of the United States’ layout of next generation of integrated circuit industry. Bulletin of Chinese Academy of Sciences, 2023, 38(6): 895-906. (in Chinese)
8 贺俊. 新兴技术产业赶超中的政府作用:产业政策研究的新视角. 中国社会科学, 2022, (11): 105-124.He J. The role of government in catching up and surpassing emerging technology industries: A new perspective on industrial policy research. Social Sciences in China, 2022, (11): 105-124. (in Chinese)
9 路风, 何鹏宇. 举国体制与重大突破——以特殊机构执行和完成重大任务的历史经验及启示. 管理世界, 2021, 37(7): 1-18. Lu F, He P Y. The new-type system of nationwide mobilization and breakthroughs: Historical experiences of accomplishing major tasks by special agencies and the lessons. Journal of Management World, 2021, 37(7): 1-18. (in Chinese)
10 张学文, 陈劲. 使命驱动型创新:源起、依据、政策逻辑与基本标准. 科学学与科学技术管理, 2019, 40(10): 3-13. Zhang X W, Chen J. Mission-oriented innovation: Origin, basis, policy logic and basic standards. Science of Science and Management of S & T, 2019, 40(10): 3-13. (in Chinese)
11 尹西明, 苏雅欣, 陈劲, 等. 场景驱动的创新:内涵特征、理论逻辑与实践进路. 科技进步与对策, 2022, 39(15): 1-10. Yin X M, Su Y X, Chen J, et al. Context-driven innovation: Connotation, theoretical logic and practical approach. Science & Technology Progress and Policy, 2022, 39(15): 1-10. (in Chinese)
12 骆军委, 李树深. 加强半导体基础能力建设 点亮半导体自立自强发展的“灯塔”. 中国科学院院刊, 2023, 38(2): 187-192. Luo J W, Li S S. Strengthen building of basic reach capacity for semiconductor research to light up “beacon” towards realizing the self-reliance and self-improvement of semiconductors. Bulletin of Chinese Academy of Sciences, 2023, 38(2): 187-192. (in Chinese)
13 孙凝晖. 对信息技术新体系的思考. 中国科学院院刊, 2022, 37(1): 8-14. Sun N H. Thoughts on new IT technique system. Bulletin of Chinese Academy of Sciences, 2022, 37(1): 8-14. (in Chinese)
14 隆云滔, 王晓明, 顾荣, 等. 国际开源发展经验及其对我国开源创新体系建设的启示. 中国科学院院刊, 2021, 36(12): 1497-1505.Long Y T, Wang X M, Gu R, et al. Development experience of international open source and its enlightenment to construction of open source innovation system in China. Bulletin of Chinese Academy of Sciences, 2021, 36(12): 1497-1505. (in Chinese)
15 陆首群. 开源创新:数字化转型与智能化重构. 北京: 机械工业出版社, 2023. Lu S Q. Open-source Innovation: Digital Transformation and Intelligent Reconstruction. Beijing: China Machine Press, 2023. (in Chinese)
16 包云岗, 孙凝晖. 开源芯片生态技术体系构建面临的机遇与挑战. 中国科学院院刊, 2022, 37(1): 24-29. Bao Y G, Sun N H. Opportunities and challenges of building CPU ecosystem with open-source mode. Bulletin of Chinese Academy of Sciences, 2022, 37(1): 24-29. (in Chinese)
17 柳卸林, 常馨之, 杨培培. 加强企业基础研究能力,弥补国家创新体系短板. 中国科学院院刊, 2023, 38(6): 853-862. Liu X L, Chang X Z, Yang P P. Strengthen basic research capacity of enterprises and make up for shortcoming of national innovation system. Bulletin of Chinese Academy of Sciences, 2023, 38(6): 853-862. (in Chinese)
18 尹西明, 陈劲, 贾宝余. 高水平科技自立自强视角下国家战略科技力量的突出特征与强化路径. 中国科技论坛, 2021, (9): 1-9. Yin X M, Chen J, Jia B Y. Key features and strengthening patch of the national strategic S&T strength under the high-level self-reliance and self-improvement perspective. Forum on Science and Technology in China, 2021, (9): 1-9. (in Chinese)
19 樊春良. 国家战略科技力量的演进:世界与中国. 中国科学院院刊, 2021, 36(5): 533-543. Fan C L. Evolution of strategic scientific and technological power: The World and China. Bulletin of Chinese Academy of Sciences, 2021, 36(5): 533-543. (in Chinese)
20 张贝贝, 李存金, 尹西明. 关键核心技术产学研协同创新机理研究——以芯片光刻技术为例. 科技进步与对策, 2023, 40(1): 1-11. Zhang B B, Li C J, Yin X M. The collaborative mechanism of key and core technology innovation: An empirical research using chip lithography as an example. Science & Technology Progress and Policy, 2023, 40(1): 1-11. (in Chinese)
21 尹西明, 钱雅婷, 武沛琦, 等. 场景驱动科技成果转化:理论逻辑与过程机理. 科学学研究, 2024, doi: 10.16192/j.cnki.1003-2053.20240017.002. Yin X M, Qian Y T, Wu P Q, et al. Context-driven technology transfer: Theoretical logic and process mechanism. Studies in Science of Science, 2024, doi: 10.16192/j.cnki.1003-2053.20240017.002. (in Chinese)
Recommended Citation
YIN, Ximing; ZHANG, Beibei; CHEN, Tailun; YU, Jiang; and CHEN, Jin
(2024)
"Insights on strategy and approach for China to construct a modern integrated circuits industrial system,"
Bulletin of Chinese Academy of Sciences (Chinese Version): Vol. 39
:
Iss.
7
, Article 31.
DOI: https://doi.org/10.16418/j.issn.1000-3045.20230720002
Available at:
https://bulletinofcas.researchcommons.org/journal/vol39/iss7/31
Included in
Electronic Devices and Semiconductor Manufacturing Commons, Engineering Physics Commons, Industrial Organization Commons, Science and Technology Policy Commons, Technology and Innovation Commons