Author
Listed:
- Yi-Hang Gao
(Tianjin Center, China Geological Survey, No. 4 Dazhigu 8th Road, Tianjin 300170, China
North China Center of Geoscience Innovation, Tianjin 300170, China
Xiong’an Urban Geological Research Center, China Geological Survey, No. 4 Dazhigu 8th Road, Tianjin 300170, China
Tianjin Key Laboratory of Coast Geological Processes and Environmental Safety, No. 4 Dazhigu 8th Road, Tianjin 300170, China)
- Bo Han
(Tianjin Center, China Geological Survey, No. 4 Dazhigu 8th Road, Tianjin 300170, China
North China Center of Geoscience Innovation, Tianjin 300170, China
Xiong’an Urban Geological Research Center, China Geological Survey, No. 4 Dazhigu 8th Road, Tianjin 300170, China
Tianjin Key Laboratory of Coast Geological Processes and Environmental Safety, No. 4 Dazhigu 8th Road, Tianjin 300170, China)
- Hong-Wei Liu
(Tianjin Center, China Geological Survey, No. 4 Dazhigu 8th Road, Tianjin 300170, China
North China Center of Geoscience Innovation, Tianjin 300170, China
Xiong’an Urban Geological Research Center, China Geological Survey, No. 4 Dazhigu 8th Road, Tianjin 300170, China
Tianjin Key Laboratory of Coast Geological Processes and Environmental Safety, No. 4 Dazhigu 8th Road, Tianjin 300170, China)
- Yao-Nan Bai
(Tianjin Center, China Geological Survey, No. 4 Dazhigu 8th Road, Tianjin 300170, China
North China Center of Geoscience Innovation, Tianjin 300170, China
Xiong’an Urban Geological Research Center, China Geological Survey, No. 4 Dazhigu 8th Road, Tianjin 300170, China
Tianjin Key Laboratory of Coast Geological Processes and Environmental Safety, No. 4 Dazhigu 8th Road, Tianjin 300170, China)
- Zhuang Li
(Tianjin Center, China Geological Survey, No. 4 Dazhigu 8th Road, Tianjin 300170, China
North China Center of Geoscience Innovation, Tianjin 300170, China
Xiong’an Urban Geological Research Center, China Geological Survey, No. 4 Dazhigu 8th Road, Tianjin 300170, China
Tianjin Key Laboratory of Coast Geological Processes and Environmental Safety, No. 4 Dazhigu 8th Road, Tianjin 300170, China)
Abstract
China’s accelerated urbanization has instigated construction land expansion and ecological land attrition, aggravating the carbon emission disequilibrium. Notably, the “land carbon emission elasticity coefficient” in urban agglomerations far exceeds international benchmarks, underscoring the contradiction between spatial expansion and low-carbon goals. Existing research predominantly centers on single-spatial-type or static-model analyses, lacking cross-scale mechanism exploration, policy heterogeneity consideration, and differentiated carbon metabolism assessment across functional spaces. This study takes Xiong’an New Area as a case, delineating the spatiotemporal evolution of land use and carbon emissions during 2017–2023. Construction land expanded by 26.8%, propelling an 11-fold escalation in carbon emissions, while emission intensity decreased by 11.4% due to energy efficiency improvements and renewable energy adoption. Cultivated land reduction (31.8%) caused a 73.4% decline in agricultural emissions, and ecological land network restructuring (65.3% forest expansion and wetland restoration) significantly enhanced carbon sequestration. This research validates a governance paradigm prioritizing “structural optimization” over “scale expansion”—synergizing construction land intensification with ecological restoration to decelerate emission growth and strengthen carbon sink systems.
Suggested Citation
Yi-Hang Gao & Bo Han & Hong-Wei Liu & Yao-Nan Bai & Zhuang Li, 2025.
"Spatial–Temporal Restructuring of Regional Landscape Patterns and Associated Carbon Effects: Evidence from Xiong’an New Area,"
Sustainability, MDPI, vol. 17(13), pages 1-15, July.
Handle:
RePEc:gam:jsusta:v:17:y:2025:i:13:p:6224-:d:1696562
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