Digital infrastructure construction, carbon total factor productivity, and carbon rebound effect

被引:0
|
作者
Mudan Lan
Yuke Zhu
机构
[1] Hunan Institute of Engineering,School of Management
[2] Hunan University of Technology and Business,School of Economics and Trade
关键词
Digital infrastructure; Carbon total factor productivity; Rebound effect;
D O I
暂无
中图分类号
学科分类号
摘要
Digital infrastructure construction (DIC) and low-carbon transformation are important engines and objective functions of the superior economic development, and the synergistic drive between the two is essential to achieving lasting economic development. Based on the panel data of 279 cities in China between 2007 and 2019, the econometric model system is used to explore the impact mechanism of DIC on carbon total factor productivity (CTFP), and the impact of DIC on carbon rebound effect (CRE) is further studied. Research findings that, first, the expansion of DIC has a nonlinear effect on CTFP, with a U-shaped link between the two; multiple robustness tests confirm that this is still true. Second, DIC and optimization of the energy consumption structure in a “U” curve relationship, and the major strategy for increasing CTFP is to reduce energy consumption, while industrial structure optimization and technical innovation have less of a intermediary effect. Third, further analysis reveals that there is a “U” shaped nonlinear connection between the DIC and the CRE, and energy savings and emission reductions in the later stages of DIC fall short of expectations. The current DIC is still dominated by episodic expansion. The findings of the study can better enhance CTFP, curb the CRE, put a limit on total carbon emissions and accelerate the decoupling of economic growth from carbon emissions.
引用
收藏
页码:88968 / 88985
页数:17
相关论文
共 50 条
  • [41] Can carbon emissions trading improve corporate total factor productivity?
    Meng, Xiangwei
    Cheng, Zhonghua
    TECHNOLOGICAL FORECASTING AND SOCIAL CHANGE, 2023, 195
  • [42] Impact of carbon trading on agricultural green total factor productivity in China
    Yu, Daisong
    Liu, Linxin
    Gao, Shanhong
    Yuan, Shiyu
    Shen, Qianling
    Chen, Haipeng
    JOURNAL OF CLEANER PRODUCTION, 2022, 367
  • [43] Research on the impact of circular economy on total factor carbon productivity in China
    Tiening Cui
    Yang Zhang
    Environmental Science and Pollution Research, 2022, 29 : 78780 - 78794
  • [44] Total Factor Productivity in Chinese agriculture: The role of infrastructure
    Chen Weiping
    Ding Ying
    FRONTIERS OF ECONOMICS IN CHINA, 2007, 2 (02) : 212 - 223
  • [45] Measurement of Carbon Total Factor Productivity in the Context of Carbon-Electricity Market Collaboration: An Application of Biennial Luenberger Productivity Index
    Zhang, Li
    Li, Hao
    Song, Zhumeng
    Shi, Wei
    Sheng, Wenxiang
    ENERGIES, 2024, 17 (05)
  • [46] Can digital economy compensate the effect of aging on total factor productivity?
    Meng, Fange
    Wen, Xin
    PLOS ONE, 2024, 19 (04):
  • [47] The effect of digital transformation on real economy enterprises? total factor productivity
    Cheng, Yiran
    Zhou, Xiaorui
    Li, Yongjian
    INTERNATIONAL REVIEW OF ECONOMICS & FINANCE, 2023, 85 : 488 - 501
  • [48] Towards Carbon Neutrality: A Comprehensive Analysis on Total Factor Carbon Productivity of the Yellow River Basin, China
    Ma, Mingjuan
    Ke, Shuifa
    Li, Qiang
    Wu, Yaqi
    SUSTAINABILITY, 2023, 15 (08)
  • [49] Pathways of the Digital Economy's Impact on Green Total Factor Productivity in the Construction Industry
    Li, Zhijiang
    Tang, Decai
    SUSTAINABILITY, 2024, 16 (24)
  • [50] Carbon neutrality implication of material productivity, total factor productivity and renewable energy uptake in the Nordics
    Celik, Ali
    Kostekci, Ahmet
    Alola, Andrew Adewale
    ECOLOGICAL INDICATORS, 2024, 160