Degradable plastics refer to adding some additives to promote their degradation or using renewable natural substances as raw materials; their light quality, good comprehensive performance, easy processing, and many other advantages have been favoured by society. Through the research method of bibliolatry, retrieval in 2013-2023 Web of Science database about biodegradable plastics research related literature information, using CiteSpace measurement analysis software visual analysis in the relevant literature keywords, publications, high cited frequency, cooperation and common word clustering information change trend, analyze the research situation in the field of biodegradable plastics in recent years, summarizes the biodegradable plastic research status, progress and research hotspot. The results of the analysis show that degradable plastic materials are an emerging research field, and the number of publications has increased rapidly since 2020. The 2019-2022 accounted for about 81% of the total in the research period. Most related studies are published in ACS NANO, ADVANCED FUNCTIONAL MATERIALS, NANOSCALE, and other journals, and they have high academic research value. The hot research field of degradable plastics focuses on polylactic acid materials and their mechanical properties. Various research hotspots are very closely related, with strong correlation and complementarity.
Published in | American Journal of Polymer Science and Technology (Volume 10, Issue 3) |
DOI | 10.11648/j.ajpst.20241003.11 |
Page(s) | 47-56 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
Copyright |
Copyright © The Author(s), 2024. Published by Science Publishing Group |
Biodegradation, Degradable Plastics, CiteSpace, Visualisation Analysis
Category | Quantities |
---|---|
Articles | 357 |
Journals | 187 |
Authors | 1498 |
Institutions | 870 |
Countries/Regions | 106 |
Rankings | Mechanism | Quantities | Percentage/(%) |
---|---|---|---|
1 | Council of scientific industrial research csir India | 10 | 2.80 |
2 | Centre national de la recherche scientifique cnrs | 8 | 2.48 |
3 | Indian institute of technology system iit system | 7 | 1.96 |
4 | National institute of technology nit system | 6 | 1.68 |
5 | Universiti sains malaysia | 6 | 1.40 |
6 | Chinese academy of sciences | 5 | 1.40 |
7 | Egyptian knowledge bank ekb | 5 | 1.40 |
8 | Universiti putra malaysia | 5 | 1.40 |
9 | University of oueensland | 5 | 1.40 |
10 | Consiglio nazionale delle ricerche cnr | 4 | 1.12 |
Rankings | Countries | Quantities | Percentage/(%) |
---|---|---|---|
1 | INDIA | 49 | 0.29 |
2 | PEOPLES R CHINA | 40 | 0.24 |
3 | USA | 14 | 0.08 |
4 | ITALY | 13 | 0.07 |
5 | CANADA | 13 | 0.07 |
6 | JAPAN | 8 | 0.05 |
7 | BRAZIL | 8 | 0.05 |
8 | SOUTH KOREA | 8 | 0.05 |
9 | ENGLAND | 3 | 0.02 |
Keywords | Year | Strength | Begin | End | 2014-2023 |
---|---|---|---|---|---|
carbon source | 2014 | 1.27 | 2014 | 2015 | ▃▃▂▂▂▂▂▂▂▂ |
biodegradable composite | 2014 | 1.14 | 2014 | 2017 | ▃▃▃▃▂▂▂▂▂▂ |
biodegradable plastic | 2014 | 1.09 | 2014 | 2015 | ▃▃▂▂▂▂▂▂▂▂ |
biodegradable polymer | 2014 | 1.59 | 2015 | 2016 | ▂▃▃▂▂▂▂▂▂▂ |
Poly (lactic acid) | 2015 | 1.14 | 2015 | 2017 | ▂▃▃▃▂▂▂▂▂▂ |
biomedical application | 2016 | 1.66 | 2016 | 2018 | ▂▂▃▃▃▂▂▂▂▂ |
hydrolytic degradation | 2016 | 1.65 | 2016 | 2017 | ▂▂▃▃▂▂▂▂▂▂ |
antibacterial property | 2016 | 1.14 | 2016 | 2017 | ▂▂▃▃▂▂▂▂▂▂ |
natural fiber | 2017 | 3.82 | 2017 | 2019 | ▂▂▂▃▃▃▂▂▂▂ |
mechanical property | 2014 | 2.86 | 2017 | 2018 | ▂▂▂▃▃▂▂▂▂▂ |
renewable resource | 2017 | 2.18 | 2017 | 2019 | ▂▂▂▃▃▃▂▂▂▂ |
physical property | 2017 | 1.93 | 2017 | 2018 | ▂▂▂▃▃▂▂▂▂▂ |
life cycle assessment | 2017 | 1.34 | 2017 | 2018 | ▂▂▂▃▃▂▂▂▂▂ |
biodegradable implant | 2017 | 1.09 | 2017 | 2019 | ▂▂▂▃▃▃▂▂▂▂ |
microbial degradation | 2018 | 2.6 | 2018 | 2019 | ▂▂▂▂▃▃▂▂▂▂ |
polyester | 2018 | 2.33 | 2018 | 2019 | ▂▂▂▂▃▃▂▂▂▂ |
ring opening polymerization | 2017 | 1.99 | 2019 | 2020 | ▂▂▂▂▂▃▃▂▂▂ |
enzymatic degradation | 2016 | 1.86 | 2019 | 2021 | ▂▂▂▂▂▃▃▃▂▂ |
poly beta hydroxyl butyrate | 2020 | 2.08 | 2020 | 2021 | ▂▂▂▂▂▂▃▃▂▂ |
shelf life | 2020 | 1.78 | 2020 | 2021 | ▂▂▂▂▂▂▃▃▂▂ |
composite | 2020 | 1.57 | 2020 | 2021 | ▂▂▂▂▂▂▃▃▂▂ |
behavior | 2020 | 1.48 | 2020 | 2021 | ▂▂▂▂▂▂▃▃▂▂ |
active packaging | 2020 | 1.48 | 2020 | 2021 | ▂▂▂▂▂▂▃▃▂▂ |
Poly (butylene succinate) | 2020 | 1.17 | 2020 | 2021 | ▂▂▂▂▂▂▃▃▂▂ |
waste | 2021 | 1.86 | 2021 | 2023 | ▂▂▂▂▂▂▂▃▃▃ |
PLA | Polylactic Acid |
LDPE | Low Density Polyethylene |
PHA | Polyhydroxyalkanoates |
PCL | Polycaprolactone |
WOS | Web of Scienc |
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[7] | Ambabu K, Bharath G, Thanigaivelan A, et al. Augmented biohydrogen production from rice mill wastewater through nano-metal oxides assisted dark fermentation [J]. Bioresource Technology, 2021, 319 (22): 124243. |
[8] | Amobonye A, Bhagwat P, Singh S, et al. Plastic biodegradation: Frontline microbes and their enzymes [J]. Science of the Total Environment, 2021. |
[9] | Li J J, Kim R H, Lee H M, et al. Rapid biodegradation of polyphenylene sulfide plastic beads by Pseudomonassp [J]. Science of the Total Environment, 2020. |
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APA Style
Liu, Y., Xu, Z., Wang, Z., Liu, Y., Ning, Y., et al. (2024). CiteSpace Visualisation and Analysis of Research Trends and Hotspots in Degradable Plastics. American Journal of Polymer Science and Technology, 10(3), 47-56. https://doi.org/10.11648/j.ajpst.20241003.11
ACS Style
Liu, Y.; Xu, Z.; Wang, Z.; Liu, Y.; Ning, Y., et al. CiteSpace Visualisation and Analysis of Research Trends and Hotspots in Degradable Plastics. Am. J. Polym. Sci. Technol. 2024, 10(3), 47-56. doi: 10.11648/j.ajpst.20241003.11
AMA Style
Liu Y, Xu Z, Wang Z, Liu Y, Ning Y, et al. CiteSpace Visualisation and Analysis of Research Trends and Hotspots in Degradable Plastics. Am J Polym Sci Technol. 2024;10(3):47-56. doi: 10.11648/j.ajpst.20241003.11
@article{10.11648/j.ajpst.20241003.11, author = {Yumeng Liu and Zihang Xu and Zhihan Wang and Yalin Liu and Yueting Ning and Zihao Sun and Yuan Zhao and Songtao Wang and Bolin Zhao and Jiazhou Chen and Huihui Wang and Sai Geng}, title = {CiteSpace Visualisation and Analysis of Research Trends and Hotspots in Degradable Plastics }, journal = {American Journal of Polymer Science and Technology}, volume = {10}, number = {3}, pages = {47-56}, doi = {10.11648/j.ajpst.20241003.11}, url = {https://doi.org/10.11648/j.ajpst.20241003.11}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajpst.20241003.11}, abstract = {Degradable plastics refer to adding some additives to promote their degradation or using renewable natural substances as raw materials; their light quality, good comprehensive performance, easy processing, and many other advantages have been favoured by society. Through the research method of bibliolatry, retrieval in 2013-2023 Web of Science database about biodegradable plastics research related literature information, using CiteSpace measurement analysis software visual analysis in the relevant literature keywords, publications, high cited frequency, cooperation and common word clustering information change trend, analyze the research situation in the field of biodegradable plastics in recent years, summarizes the biodegradable plastic research status, progress and research hotspot. The results of the analysis show that degradable plastic materials are an emerging research field, and the number of publications has increased rapidly since 2020. The 2019-2022 accounted for about 81% of the total in the research period. Most related studies are published in ACS NANO, ADVANCED FUNCTIONAL MATERIALS, NANOSCALE, and other journals, and they have high academic research value. The hot research field of degradable plastics focuses on polylactic acid materials and their mechanical properties. Various research hotspots are very closely related, with strong correlation and complementarity. }, year = {2024} }
TY - JOUR T1 - CiteSpace Visualisation and Analysis of Research Trends and Hotspots in Degradable Plastics AU - Yumeng Liu AU - Zihang Xu AU - Zhihan Wang AU - Yalin Liu AU - Yueting Ning AU - Zihao Sun AU - Yuan Zhao AU - Songtao Wang AU - Bolin Zhao AU - Jiazhou Chen AU - Huihui Wang AU - Sai Geng Y1 - 2024/07/31 PY - 2024 N1 - https://doi.org/10.11648/j.ajpst.20241003.11 DO - 10.11648/j.ajpst.20241003.11 T2 - American Journal of Polymer Science and Technology JF - American Journal of Polymer Science and Technology JO - American Journal of Polymer Science and Technology SP - 47 EP - 56 PB - Science Publishing Group SN - 2575-5986 UR - https://doi.org/10.11648/j.ajpst.20241003.11 AB - Degradable plastics refer to adding some additives to promote their degradation or using renewable natural substances as raw materials; their light quality, good comprehensive performance, easy processing, and many other advantages have been favoured by society. Through the research method of bibliolatry, retrieval in 2013-2023 Web of Science database about biodegradable plastics research related literature information, using CiteSpace measurement analysis software visual analysis in the relevant literature keywords, publications, high cited frequency, cooperation and common word clustering information change trend, analyze the research situation in the field of biodegradable plastics in recent years, summarizes the biodegradable plastic research status, progress and research hotspot. The results of the analysis show that degradable plastic materials are an emerging research field, and the number of publications has increased rapidly since 2020. The 2019-2022 accounted for about 81% of the total in the research period. Most related studies are published in ACS NANO, ADVANCED FUNCTIONAL MATERIALS, NANOSCALE, and other journals, and they have high academic research value. The hot research field of degradable plastics focuses on polylactic acid materials and their mechanical properties. Various research hotspots are very closely related, with strong correlation and complementarity. VL - 10 IS - 3 ER -