Transforming food systems toward carbon neutrality on a rapidly developing tropical island

Tropical islands are highly vulnerable to climate change, yet their food systems are increasingly contributing to greenhouse gas (GHG) emissions. Here, we quantify long-term emissions and carbon sequestration of the food system on Hainan Island using a life cycle assessment (LCA) framework covering 1952–2020, together with scenario projections to 2060. We find that Hainan Island’s food system shifted from a net carbon sink to a major emission source over the past seven decades, with gross emissions rising from 3.29 Mt CO 2 eq in 1952 to 15.13 Mt CO 2 eq in 2020, accounting for approximately 35% of the island’s total emissions. This transition was driven primarily by fertilizer-intensive tropical crop production, aquaculture expansion, and export-oriented agriculture. Scenario analysis shows that government management alone cannot deliver deep mitigation, whereas combining technological optimization with a structural shift from export-oriented production toward regional self-sufficiency could convert the food system into a substantial net carbon sink. Under this transformation scenario, the food system could achieve an absolute net sequestration of 13.55 Mt CO 2 eq by 2060, corresponding to a 20.33 Mt CO 2 eq reduction in net emissions relative to the BAU scenario. Our findings demonstrate that food systems on tropical islands can play a pivotal role in achieving carbon neutrality through coordinated technological, structural, and trade-related interventions.

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Publication Details

Journal
Carbon Research
Published
2026-08-26
DOI
https://doi.org/10.1007/s44246-026-00298-w
Primary Topic
Agriculture Sustainability and Environmental Impact
Type
article
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article

Transforming food systems toward carbon neutrality on a rapidly developing tropical island

Bo Hu, 白兆海, Zichen Li, Lin Ma et al.
Carbon Research
Agriculture Sustainability and Environmental Impact
article

Transforming food systems toward carbon neutrality on a rapidly developing tropical island

Bo Hu, 白兆海, Zichen Li, Lin Ma, Xiaoyang Shan, Hongwei Zhao
article en

Abstract

Tropical islands are highly vulnerable to climate change, yet their food systems are increasingly contributing to greenhouse gas (GHG) emissions. Here, we quantify long-term emissions and carbon sequestration of the food system on Hainan Island using a life cycle assessment (LCA) framework covering 1952–2020, together with scenario projections to 2060. We find that Hainan Island’s food system shifted from a net carbon sink to a major emission source over the past seven decades, with gross emissions rising from 3.29 Mt CO 2 eq in 1952 to 15.13 Mt CO 2 eq in 2020, accounting for approximately 35% of the island’s total emissions. This transition was driven primarily by fertilizer-intensive tropical crop production, aquaculture expansion, and export-oriented agriculture. Scenario analysis shows that government management alone cannot deliver deep mitigation, whereas combining technological optimization with a structural shift from export-oriented production toward regional self-sufficiency could convert the food system into a substantial net carbon sink. Under this transformation scenario, the food system could achieve an absolute net sequestration of 13.55 Mt CO 2 eq by 2060, corresponding to a 20.33 Mt CO 2 eq reduction in net emissions relative to the BAU scenario. Our findings demonstrate that food systems on tropical islands can play a pivotal role in achieving carbon neutrality through coordinated technological, structural, and trade-related interventions.

Carbon ResearchVol. 5(1)
Hainan University (CN), State Key Laboratory of Pollution Control and Resource Reuse (CN), Center for Agricultural Resources Research (CN), Institute of Genetics and Developmental Biology (CN), Nanjing University (CN)
Zero hunger
Openalex Percentile: Top 10%
Agriculture Sustainability and Environmental Impact
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