[1] 张哲, 任怡萌, 董会娟. 城市碳排放达峰和低碳发展研究: 以上海市为例 [J]. 环境工程, 2020, 38(11): 12-18. DOI:  10.13205/j.hjgc.202011003.

ZHANG Z, REN Y M, DONG H J. Research on carbon emissions peaking and low-carbon development of cities: a case of Shanghai [J]. Environmental engineering, 2020, 38(11): 12-18. DOI:  10.13205/j.hjgc.202011003.
[2] 郑长德, 刘帅. 基于空间计量经济学的碳排放与经济增长分析 [J]. 中国人口·资源与环境, 2011, 21(5): 80-86. DOI:  10.3969/j.issn.1002-2104.2011.05.014.

ZHENG C D, LIU S. Empirical research of carbon emission and economic growth in China based on the spatial econometric analysis [J]. China population, resources and environment, 2011, 21(5): 80-86. DOI:  10.3969/j.issn.1002-2104.2011.05.014.
[3] FODHA M, ZAGHDOUD O. Economic growth and pollutant emissions in Tunisia: an empirical analysis of the environmental Kuznets curve [J]. Energy policy, 2010, 38(2): 1150-1156. DOI:  10.1016/j.enpol.2009.11.002.
[4] YUE X F, DEANE J P, O'GALLACHOIR B, et al. Identifying decarbonisation opportunities using marginal abatement cost curves and energy system scenario ensembles [J]. Applied energy, 2020, 276: 115456. DOI:  10.1016/j.apenergy.2020.115456.
[5] Mayor's Office of Sustainability, NYC. OneNYC 2050: building a strong and fair city [EB/OL].(2022-06-17)[2023-04-05]https://onenyc.cityofnewyork.us.
[6] 魏楚. 中国城市CO2边际减排成本及其影响因素 [J]. 世界经济, 2014, 37(7): 115-141. DOI:  10.19985/j.cnki.cassjwe.2014.07.007.

WEI C. Marginal CO2 emission reduction costs and influencing factors in Chinese cities [J]. The journal of world economy, 2014, 37(7): 115-141. DOI:  10.19985/j.cnki.cassjwe.2014.07.007.
[7] 刘竹. 全球碳排放的近实时定量方法 [J]. 科学通报, 2023, 68(7): 830-840. DOI:  10.1360/TB-2022-0494.

LIU Z. Near-real-time methodology for assessing global carbon emissions [J]. Chinese science bulletin, 2023, 68(7): 830-840. DOI:  10.1360/TB-2022-0494.
[8] 上海市发展和改革委员会. 上海市氢能产业发展中长期规划 (2022-2035年) [EB/OL]. (2022-06-20)[2023-04-05]. https://fgw.sh.gov.cn/fgw_gjscy/20220617/f380fb95c7c54778a0ef1c4a4e67d0ea.html.

Shanghai Municipal Development & Reform Commission. Medium and long term plan for the development of hydrogen energy industry in Shanghai (2022-2035) [EB/OL]. (2022-06-20)[2023-04-05]. https://fgw.sh.gov.cn/fgw_gjscy/20220617/f380fb95c7c54778a0ef1c4a4e67d0ea.html.
[9] 孙旭东, 赵玉莹, 李诗睿, 等. 我国地方性氢能发展政策的文本量化分析 [J/OL]. 化工进展: 1-12 (2022-11-30)[2023-04-05]. https://doi.org/10.16085/j.issn.1000-6613.2022-1580.

SUN X D, ZHAO Y Y, LI S R, et al. Textual quantitative analysis on China's local hydrogen energy development policies [J/OL]. Chemical industry and engineering progress: 1-12 (2022-11-30)[2023-04-05]. https://doi.org/10.16085/j.issn.1000-6613.2022-1580.
[10] 史倩, 过良, 张永亮. 新能源制氢在传统炼化企业的应用 [J]. 南方能源建设, 2022, 9(4): 32-39. DOI:  10.16516/j.gedi.issn2095-8676.2022.04.004.

SHI Q, GUO L, ZHANG Y L. Application of water-electrolytic hydrogen production technology in traditional refinery and chemical enterprise [J]. Southern energy construction, 2022, 9(4): 32-39. DOI:  10.16516/j.gedi.issn2095-8676.2022.04.004.
[11] 高啸天, 郑可昕, 蔡春荣, 等. 氢储能用于核电调峰经济性研究 [J]. 南方能源建设, 2021, 8(4): 1-8. DOI:  10.16516/j.gedi.issn2095-8676.2021.04.001.

GAO X T, ZHENG K X, CAI C R, et al. Research on economy of hydrogen energy storage for nuclear power peak shaving [J]. Southern energy construction, 2021, 8(4): 1-8. DOI:  10.16516/j.gedi.issn2095-8676.2021.04.001.
[12] 黄宣旭, 练继建, 沈威, 等. 中国规模化氢能供应链的经济性分析 [J]. 南方能源建设, 2020, 7(2): 1-13. DOI:  10.16516/j.gedi.issn2095-8676.2020.02.001.

HUANG X X, LIAN J J, SHEN W, et al. Economic analysis of China's large-scale hydrogen energy supply chain [J]. Southern energy construction, 2020, 7(2): 1-13. DOI:  10.16516/j.gedi.issn2095-8676.2020.02.001.
[13] 姚若军, 高啸天. 氢能产业链及氢能发电利用技术现状及展望 [J]. 南方能源建设, 2021, 8(4): 9-15. DOI:  10.16516/j.gedi.issn2095-8676.2021.04.002.

YAO R J, GAO X T. Current situation and prospect of hydrogen energy industry chain and hydrogen power generation utilization technology [J]. Southern energy construction, 2021, 8(4): 9-15. DOI:  10.16516/j.gedi.issn2095-8676.2021.04.002.
[14] 上海市规划与自然资源局. 上海市城市总体规划2017-2035 [EB/OL]. (2010-01-01)[2023-04-05]. https://ghzyj.sh.gov.cn/cmsres/13/135d5e42e159406ab1b4d1102eea2ffa/b86b9d44cb49dba1c00b7a2ac83be28d.pdf.

Shanghai Municipal Bureau of Planning and Natural Resources. Shanghai Urban Master Plan 2017-2035 [EB/OL]. (2010-01-01)[2023-04-05]. https://ghzyj.sh.gov.cn/cmsres/13/135d5e42e159406ab1b4d1102eea2ffa/b86b9d44cb49dba1c00b7a2ac83be28d.pdf.
[15] 上海市住房和城乡建设管理委员会. 《上海市车用加氢站布局专项规划》公示 [EB/OL]. (2021-02-07)[2023-04-05]. https://zjw.sh.gov.cn/gsgg/20210207/890ef123de244d399fdd921ebfbdcaf6.html.

Shanghai Housing and Urban Rural Construction Management Committee. The "Shanghai vehicle hydrogen refueling station layout special plan" was announced [EB/OL]. (2021-02-07)[2023-04-05]. https://zjw.sh.gov.cn/gsgg/20210207/890ef123de244d399fdd921ebfbdcaf6.html.
[16] Fuel Cells and Hydrogen 2 Joint Undertaking. Hydrogen roadmap Europe: a sustainable pathway for the European energy transition [R/OL]. (2019-02-11)[2023-04-05]. https://www.clean-hydrogen.europa.eu/system/files/2019-02/Hydrogen%2520Roadmap%2520Europe_Report.pdf.
[17] 李鹏, 肖建群. 电解水制氢在电厂和氢能项目的设计应用 [J]. 南方能源建设, 2020, 7(2): 41-45. DOI:  10.16516/j.gedi.issn2095-8676.2020.02.006.

LI P, XIAO J Q. Design and application of hydrogen production by electrolysising water in power plants and hydrogen energy projects [J]. Southern energy construction, 2020, 7(2): 41-45. DOI:  10.16516/j.gedi.issn2095-8676.2020.02.006.
[18] 万永江, 韩爽, 闫亚敏, 等. 风光制氢容量配置优化研究及绿氢经济性分析 [J]. 内蒙古电力技术, 2023, 41(1): 8-14. DOI:  10.19929/j.cnki.nmgdljs.2023.0002.

WAN Y J, HAN S, YAN Y M, et al. Research on optimization of capacity allocation of wind power and photovoltaic hydrogen production and economic analysis of green hydrogen [J]. Inner Mongolia electric power, 2023, 41(1): 8-14. DOI:  10.19929/j.cnki.nmgdljs.2023.0002.
[19] 范宏, 杨忠权, 夏世威.考虑阶梯式碳交易机制的混氢天然气综合能源系统低碳经济运行 [J/OL]. 上海交通大学学报: 1-21 (2023-03-12) [2023-04-01]. https://doi.org/10.16183/j.cnki.jsjtu.2022.377.

FAN H, YANG Z Q, XIA S W. Low carbon economic operation of hydrogen enriched compressed natural gas integrated energy system considering step carbon trading mechanism Journal of Shanghai Jiao Tong University [J/OL]. Journal of Shanghai Jiao Tong University: 1-21 (2023-03-12) [2023-04-01]. https://doi.org/10.16183/j.cnki.jsjtu.2022.377.
[20] JENS J, WANG A, VAN DER LEUN K, et al. Extending the European hydrogen backbone, a European hydrogen infrastructure vision covering 21 countries [R/OL]. (2021-04-01)[2023-04-05]. https://www.ehb.eu/files/downloads/European-Hydrogen-Backbone-April-2021-V3.pdf.
[21] 李文琪. 中日韩可再生能源政策研究与合作前景探析 [J]. 国际石油经济, 2022, 30(10): 90-98. DOI:  10.3969/j.issn.1004-7298.2022.10.012.

LI W Q. Research on renewable energy policy and cooperation prospects among China, Japan, and South Korea [J]. International petroleum economics, 2022, 30(10): 90-98. DOI:  10.3969/j.issn.1004-7298.2022.10.012.
[22] 张灿, 张明震, 申升, 等. 中国氢能高质量发展的路径建议与政策探讨 [J]. 南方能源建设, 2022, 9(4): 11-23. DOI:  10.16516/j.gedi.issn2095-8676.2022.04.002.

ZHANG C, ZHANG M Z, SHEN S, et al. Path suggestion and policy discussion for China's high-quality development of hydrogen energy [J]. Southern energy construction, 2022, 9(4): 11-23. DOI:  10.16516/j.gedi.issn2095-8676.2022.04.002.