长江流域资源与环境 >> 2025, Vol. 34 >> Issue (12): 2660-.doi: 10.11870/cjlyzyyhj202512004

• 区域可持续发展 • 上一篇    下一篇

智慧城市建设对长江经济带碳全要素生产率的影响——基于智慧城市试点政策的准自然实验

黎振强,湛晨*   

  1. (湖南理工学院经济与管理学院,湖南 岳阳414006)
  • 出版日期:2025-12-20 发布日期:2025-12-25

Impact of Smart City Construction on Carbon Total Factor Productivity in the Yangtze River Economic Belt: Quasi-natural Experiment Based on Smart City Pilot Policy

LI Zhen-qiang, ZHAN Chen   

  1. (School of Economics and Management, Hunan Institute of Science and Technology, Yueyang 414006, China)
  • Online:2025-12-20 Published:2025-12-25

摘要: 智慧城市建设作为推动城市绿色低碳发展的重要路径,其影响碳全要素生产率的作用机制亟待深入探究。基于2007~2022年长江经济带108个城市的面板数据,采用非径向方向性距离函数(NDDF)测度碳全要素生产率,并将智慧城市试点政策视为准自然实验,通过多时点双重差分模型和四段式中介效应模型,系统分析智慧城市建设对碳全要素生产率影响的直接效应、异质性特征及绿色技术创新的传导路径。研究表明:(1)长江经济带碳全要素生产率总体呈波动上升趋势,但区域间差异显著,空间分布呈现“下游>中游>上游”的梯度格局;(2)智慧城市建设显著提升了长江经济带碳全要素生产率,且对中下游城市、大型城市及非资源型城市的促进作用更为突出;(3)绿色技术创新是智慧城市建设驱动碳全要素生产率提升的关键中介渠道。基于此,建议沿江省市构建区域协同机制,依据城市禀赋实施差异化智慧降碳策略,并强化绿色技术创新与成果转化,以推动全流域低碳转型。

Abstract: Smart city construction is a critical pathway to promote green and low-carbon urban development, yet its mechanism for influencing the carbon total factor productivity requires further exploration.Based on the panel data of 108 cities in the Yangtze River Economic Belt (YREB) from 2007 to 2022, this study used the non-radial directional distance function (NDDF) to measure the carbon total factor productivity.While the smart city pilot policy is treated as a quasi-natural experiment, and through the multi-time point difference-in-differences model and the four-stage mediating effect model, this study systematically analyzed the direct effect, heterogeneity characteristics and green technology innovation transmission path of impact of smart city construction on the carbon total factor productivity.The results showed that: (1) The carbon total factor productivity in the YREB exhibited an overall upward trend with fluctuations, yet significant regional disparities existed, with a spatial gradient pattern of "downstream > midstream > upstream"; (2) Smart city construction significantly enhanced the carbon total factor productivity in the YREB, especially for midstream and downstream cities, large-sized cities and non-resource-based cities; (3) Green technology innovation served as the key intermediary channel for smart city construction to promote the carbon total factor productivity.Based on these results, it was suggested that the provinces and cities in the YREB establish regional collaborative mechanisms, implement differentiated smart carbon reduction strategies according to the endowments of cities, and strengthen the innovation and transformation of green technologies to promote the low-carbon transformation across the whole basin.

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