| Literature DB >> 35565156 |
Na Su1, Zhenbo Wang1,2.
Abstract
Global temperature change is related to the destiny of all mankind, and carbon mitigation, as well as greenhouse gases control, are key points. In order to explore the basic knowledge, research hotspots and trends in global carbon mitigation research, this paper, based on 15,304 carbon mitigation articles from Web of Science, from 1991 to 2021, conducts spatio-temporal distribution, country distribution, research hotspots and cooperation network analysis, and draws frontier knowledge graphs of carbon mitigation by using CiteSpace, Gephi and other scientific knowledge mapping and literature analysis software. The key scholars, important literature, main contribution institutions and countries/regions in the field of carbon mitigation research were extracted, and the research basis and evolution law were displayed. The study found that: (1) The research on carbon mitigation is increasing every year, which can be roughly divided into four stages: germination, low-speed development, medium-speed development and high-speed development. (2) The spatial distribution of carbon mitigation research is unbalanced, mainly showing a characteristic of "one super and many strong" centered on the United States. (3) The research hotspots of carbon mitigation have gradually evolved from phenomenon analysis, policy guidance, method exploration to mechanism improvement. Further research might focus on ocean carbon sink, carbon trading and carbon-negative technology.Entities:
Keywords: bibliometrics; carbon mitigation; hot spot analysis; scientific knowledge graphs; trend analysis
Mesh:
Substances:
Year: 2022 PMID: 35565156 PMCID: PMC9104444 DOI: 10.3390/ijerph19095766
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 4.614
Figure 1Annual Change Statistics on the Number of Research Papers Published in the WoSCC Database on Carbon Mitigation. Note: the data in the figure were obtained based on WOS summary and collation.
Figure 2Map of National/Regional Cooperation Networks in the Field of Carbon Mitigation Research.
Top 10 Countries/Regions in the Field of Carbon mitigation Research.
| Country | Number of Publications | Degree of Cooperative Network Intensity |
|---|---|---|
| The USA | 4213 | 132 |
| China | 3180 | 104 |
| The UK | 1686 | 125 |
| Germany | 1479 | 112 |
| Australia | 1076 | 101 |
| Canada | 896 | 93 |
| Netherlands | 828 | 97 |
| India | 795 | 93 |
| Italy | 731 | 102 |
Figure 3Annual Number of Papers Published by the Top Ten Countries/Regions in the Field of Carbon mitigation Research.
Figure 4Cooperation Network of Institutions in the Field of Carbon Emission Reduction Research.
Top Ten Research Institutions and Funding Institutions in the Field of Carbon Emission Reduction Research.
| Research Institutions | Number of Publications | Degree of Cooperative Network Intensity | Funding Agencies | Number of Publications |
|---|---|---|---|---|
| Chinese Academy of Sciences, China | 714 | 1148 | National Natural Science Foundation of China, China | 1806 |
| University of California System, The USA | 532 | 1220 | European Commission | 843 |
| USA. Department of Energy, The USA | 521 | 1039 | UK Research and Innovation, The UK | 764 |
| Tsinghua University, China | 336 | 450 | National Science Foundation, The USA | 561 |
| USA. Department of Agriculture, The USA | 319 | 639 | Natural Environment Research Council, The UK | 405 |
| Centre National de la Recherche | 306 | 1099 | United States Department of Energy, The USA | 358 |
| International Institute for Applied Systems Analysis, Austria | 304 | 661 | Fundamental Research Funds for the Central Universities, China | 264 |
| Potsdam Institute for Climate Impact Research, Germany | 261 | 465 | Engineering and Physical Sciences Research Council, The UK | 248 |
| Helmholtz Association, Germany | 253 | 773 | Conselho Nacional de Desenvolvimento Científico e Tecnológico, Brazil | 193 |
| Wageningen University & Research, Netherlands | 246 | 660 | United States Department of Agriculture, The USA | 187 |
Note: The research institution is the institution where the author of the article is located and the funding institution is the source of funding for the article.
Figure 5Knowledge Map of Keyword Clustering of Cited Literature in Carbon Emission Reduction Research.
Figure 6Top 25 Cited Studies on Carbon Emission Reduction Research. Note: the top 25 cited literature sources: (1) AR5 Climate Change 2013: The Physical Science Basis—IPCC (https://www.ipcc.ch/report/ar5/wg1/) accessed on 1 March 2022. (2) https://www.science.org/doi/10.1126/science.1151861 accessed on 1 March 2022. (3) https://royalsocietypublishing.org/doi/full/10.1098/rstb.2007.2184 accessed on 1 March 2022. (4) https://www.science.org/doi/10.1126/science.1152747 accessed on 1 March 2022. (5) Greenhouse-gas emission targets for limiting global warming to 2 °C|Nature (https://www.nature.com/articles/nature08017) accessed on 1 March 2022. (6) AR5 Climate Change 2014: Impacts, Adaptation, and Vulnerability—IPCC (https://www.ipcc.ch/report/ar5/wg2/) accessed on 1 March 2022. (7) https://onlinelibrary.wiley.com/doi/abs/10.1046/j.1365-2486.2000.00331.x accessed on 1 March 2022. (8) Climate–Carbon Cycle Feedback Analysis: Results from the C4MIP Model Intercomparison in: Journal of Climate Volume 19 Issue 14 (2006) (ametsoc.org) (https://journals.ametsoc.org/view/journals/clim/19/14/jcli3800.1.xml) accessed on 1 March 2022. (9) SR15_SPM_version_stand_alone_LR.pdf (ipcc.ch) (https://www.ipcc.ch/site/assets/uploads/sites/2/2018/07/SR15_SPM_version_stand_alone_LR.pdf) accessed on 1 March 2022. (10) The next generation of scenarios for climate change research and assessment | Nature (https://www.nature.com/articles/nature08823) accessed on 1 March 2022. (11) Implications of Limiting CO2 Concentrations for Land Use and Energy (https://www.science.org/doi/epdf/10.1126/science.1168475) accessed on 1 March 2022. (12) International climate policy architectures: Overview of the EMF 22 International Scenarios-Science Direct (https://www.sciencedirect.com/science/article/pii/S0140988309001960?via%3Dihub) accessed on 1 March 2022. (13) ACP-N2O release from agro-biofuel production negates global warming reduction by replacing fossil fuels (copernicus.org) (https://acp.copernicus.org/articles/8/389/2008/) accessed on 1 March 2022. (14) Meeting the UK’s climate change commitments: options for carbon mitigation on agricultural land-Smith-2000-Soil Use and Management-Wiley Online Library (https://bsssjournals.onlinelibrary.wiley.com/doi/10.1111/j.1475-2743.2000.tb00162.x) accessed on 1 March 2022. (15) Irreversible climate change due to carbon dioxide emissions | PNAS (https://www.pnas.org/doi/full/10.1073/pnas.0812721106) accessed on 1 March 2022. (16) [PDF] Climate change 2001: mitigation | Semantic Scholar (https://www.semanticscholar.org/paper/Climate-change-2001-%3A-mitigation-Metz-Davidson/225e2605932bc6fef128a57c2d15d2b92a40c3b5) accessed on 1 March 2022. (17) Land Use, Land-Use Change, and Forestry—IPCC (https://www.ipcc.ch/report/land-use-land-use-change-and-forestry/) accessed on 1 March 2022. (18) Carbon Sequestration in Soils (science.org) accessed on 1 March 2022. (19) Managing Forests for Climate Change Mitigation (science.org) accessed on 1 March 2022. (20) Soil Carbon Sequestration Impacts on Global Climate Change and Food Security (science.org). (21) Combined climate and carbon-cycle effects of large-scale deforestation|PNAS (https://www.pnas.org/doi/full/10.1073/pnas.0608998104) accessed on 1 March 2022. (22) ipcc_wg_I_1992_suppl_report_front_matters.pdf, (https://www.ipcc.ch/site/assets/uploads/2018/05/ipcc_wg_I_1992_suppl_report_front_matters.pdf) accessed on 1 March 2022. (23) R Core Team (2020) R A Language and Environment for Statistical Computing. R Foundation for Statistical Computing, Vienna-References-Scientific Research Publishing (scirp.org) (https://scirp.org/reference/referencespapers.aspx?referenceid=3000405) accessed on 1 March 2022. (24) Carbon sequestration and biomass energy offset: theoretical, potential and achievable capacities globally, in Europe and the UK-ScienceDirect (https://www.sciencedirect.com/science/article/abs/pii/S0961953402001034?via%3Dihub) accessed on 1 March 2022. (25) Nakicenovic, N., et al. (2000) Special Report on Emissions Scenarios. Cambridge University Press, Cambridge, 599 p.-References-Scientific Research Publishing (scirp.org), (https://www.scirp.org/reference/ReferencesPapers.aspx?ReferenceID=1354892) accessed 1 March 2022.
Figure 7Knowledge Map of Cited Literature on Carbon Emission Reduction Research Based on Discipline Clustering.
Figure 8Knowledge Map of Keyword Clustering of Cited Literature in Carbon Emission Reduction Research.
Figure 9Key words highlighted in the first 30 citations of carbon emission reduction research.