Research on the Application of Biochar in Carbon Sequestration: A Bibliometric Analysis

被引:0
作者
Zhang, Shizhao [1 ,2 ]
Wang, Shuzhi [1 ,2 ]
Zhang, Jiayong [1 ]
Wang, Bao [3 ]
Wang, Hui [1 ,2 ]
Liu, Liwei [1 ]
Cao, Chong [1 ,2 ]
Shi, Muyang [4 ]
Liu, Yuhan [1 ]
机构
[1] North China Univ Sci & Technol NCUST, Sch Emergency Management & Safety Engn SEMS, Tangshan 063210, Peoples R China
[2] North China Univ Sci & Technol, Sch Emergency Management & Safety Engn, Tangshan Key Lab Geol Resource Dev & Disaster Prev, Tangshan 063210, Peoples R China
[3] PetroChina Jidong Oilfield Co, Tangshan 063000, Peoples R China
[4] North China Univ Sci & Technol NCUST, Sch Civil & Architectural Engn SCAE, Tangshan 063210, Peoples R China
关键词
biochar; carbon sequestration; bibliometrics; multi-waste conversion; co-pyrolysis; soil carbon sequestration; PHYSICOCHEMICAL PROPERTIES; LOW-COST; SOIL; PYROLYSIS; REMOVAL; SCIENCE; PRODUCTIVITY; MECHANISMS; STABILITY; ADSORBENT;
D O I
10.3390/en18112745
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Driven by global carbon neutrality goals, biochar has gained significant attention due to its stable carbon sequestration capabilities and environmental benefits. This research employs bibliometric tools such as VOSviewer 1.6.16, Citespace 6.2 R6, and Scimago Graphica to systematically analyze 2076 publications from the Web of Science Core Collection between 2007 and 2024, aiming to clarify the evolutionary trajectory, research hotspots, and international collaboration patterns of biochar carbon sequestration research while identifying future knowledge gaps for innovation. Research results reveal a three-stage developmental characteristic: 2007-2014 was a slow accumulation period for fundamental mechanism exploration, 2015-2020 was an accelerated expansion period driven by policies like the Paris Agreement, and 2021 to the present marks an exponential growth phase of interdisciplinary integration due to global carbon market consolidation. China and the United States are core producing countries, though inter-institutional deep collaboration remains insufficient. Research hotspots have progressively shifted from early biochar preparation and carbon stability to multiple waste materials (such as rice straw and urban carbon sequestration waste) and co-pyrolysis technologies (significantly emerging since 2022), with machine learning applications in process optimization becoming a nascent direction. The study recommends increasing cross-disciplinary research funding, establishing biochar raw material pollution standards, and promoting coordinated policies that combine biochar carbon sequestration with agricultural efficiency to support global carbon reduction objectives. Notably, the research's reliance on the Web of Science Core Collection may limit coverage of non-English literature and regional studies. By quantitatively analyzing technological evolution and collaboration networks, this study provides a data-driven framework for optimizing biochar carbon sequestration strategies, helping bridge the gap between laboratory potential and actual climate emission reduction, and offering focused action pathways for policymakers and researchers.
引用
收藏
页数:31
相关论文
共 130 条
[1]   Biochar as a sorbent for contaminant management in soil and water: A review [J].
Ahmad, Mahtab ;
Rajapaksha, Anushka Upamali ;
Lim, Jung Eun ;
Zhang, Ming ;
Bolan, Nanthi ;
Mohan, Dinesh ;
Vithanage, Meththika ;
Lee, Sang Soo ;
Ok, Yong Sik .
CHEMOSPHERE, 2014, 99 :19-33
[2]   Pyrolysis temperature induced changes in characteristics and chemical composition of biochar produced from conocarpus wastes [J].
Al-Wabel, Mohammad I. ;
Al-Omran, Abdulrasoul ;
El-Naggar, Ahmed H. ;
Nadeem, Mahmoud ;
Usman, Adel R. A. .
BIORESOURCE TECHNOLOGY, 2013, 131 :374-379
[3]  
[Anonymous], 2015, International Biochar Initiative Standardized Product Definition and Product Testing Guidelines for Biochar That Is Used in Soil (aka IBI Biochar Standards)
[4]   A bibliometric analysis on the agricultural use of biochar in Brazil from 2003 to 2021: research status and promising raw materials [J].
Arias, Candela Mariel ;
da Silva, Laura Fernanda Simoes ;
Soares, Marcio Roberto ;
Forti, Victor Augusto .
RENEWABLE AGRICULTURE AND FOOD SYSTEMS, 2023, 38
[5]   Potential mechanisms for achieving agricultural benefits from biochar application to temperate soils: a review [J].
Atkinson, Christopher J. ;
Fitzgerald, Jean D. ;
Hipps, Neil A. .
PLANT AND SOIL, 2010, 337 (1-2) :1-18
[6]   Exploring the negative effects of biochars on the germination, growth, and antioxidant system of rice and corn [J].
Bai, Xiaohan ;
Zhang, Shijing ;
Shao, Jihai ;
Chen, Anwei ;
Jiang, Jinlin ;
Chen, Ang ;
Luo, Si .
JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2022, 10 (03)
[7]   A global meta-analysis of soil organic carbon in the Anthropocene [J].
Beillouin, Damien ;
Corbeels, Marc ;
Demenois, Julien ;
Berre, David ;
Boyer, Annie ;
Fallot, Abigail ;
Feder, Frederic ;
Cardinael, Remi .
NATURE COMMUNICATIONS, 2023, 14 (01)
[8]   A three-year experiment confirms continuous immobilization of cadmium and lead in contaminated paddy field with biochar amendment [J].
Bian, Rongjun ;
Joseph, Stephen ;
Cui, Liqiang ;
Pan, Genxing ;
Li, Lianqing ;
Liu, Xiaoyu ;
Zhang, Afeng ;
Rutlidge, Helen ;
Wong, Singwei ;
Chia, Chee ;
Marjo, Chris ;
Gong, Bin ;
Munroe, Paul ;
Donne, Scott .
JOURNAL OF HAZARDOUS MATERIALS, 2014, 272 :121-128
[9]   Biochar and its effects on plant productivity and nutrient cycling: a meta-analysis [J].
Biederman, Lori A. ;
Harpole, W. Stanley .
GLOBAL CHANGE BIOLOGY BIOENERGY, 2013, 5 (02) :202-214
[10]   Biochar, soil and land-use interactions that reduce nitrate leaching and N2O emissions: A meta-analysis [J].
Borchard, Nils ;
Schirrmann, Michael ;
Luz Cayuela, Maria ;
Kammann, Claudia ;
Wrage-Moennig, Nicole ;
Estavillo, Jose M. ;
Fuertes-Mendizabal, Teresa ;
Sigua, Gilbert ;
Spokas, Kurt ;
Ippolito, James A. ;
Novak, Jeff .
SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 651 (2354-2364) :2354-2364