Green total factor productivity (GTFP) improvement is an important way to achieve sustainable development, and how to improve GTFP has become the focus of attention of governments and scholars. This paper constructs a GTFP evaluation index system to characterize social, economic, ecological, cultural, and politically sustainable development, and analyzes the impact of environmental regulations on GTFP in the context of increasing innovative labor force. The results of the study are as follows: Firstly, China's GTFP continues to improve, with a decrease in low-value provinces and an increase in high-value provinces; there is an agglomeration effect of GTFP in the eastern and western regions. Secondly, under the role of innovative human capital, the threshold effect of China and the eastern and western regions is significantly positive in the first stage and insignificant in the second stage. The threshold effect of the central region is not significant in the first stage, but significantly negative in the second stage (- 11.650); the effect of environmental regulation in the eastern region is the strongest. Thirdly, the control variables in the upper period GTFP, national and eastern R&D investment, level of foreign openness, local fiscal expenditure, central and western information construction, western tertiary industry development, urbanization, foreign direct investment, level of foreign openness, and local fiscal expenditure can increase GTFP. In this regard, the government should adhere to innovative talent cultivation and investment in science and technology to build a talent ecological environment for regional sustainable development, adjust environmental regulations in time to meet the demand for sustainable development to realize the GTFP regional linkage enhancement.
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http://dx.doi.org/10.1007/s11356-022-22120-x | DOI Listing |
Sci China Life Sci
January 2025
State Key Laboratory for Quality Ensurance and Sustainable Use of Dao-di Herbs, Institute of Medicinal Plant Development, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, 100193, China.
Nano Converg
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Bendable Electronics and Sustainable Technologies (BEST) Group, Electrical and Computer Engineering Department, Northeastern University, Boston, MA, 02115, USA.
The intriguing way the receptors in biological skin encode the tactile data has inspired the development of electronic skins (e-skin) with brain-inspired or neuromorphic computing. Starting with local (near sensor) data processing, there is an inherent mechanism in play that helps to scale down the data. This is particularly attractive when one considers the huge data produced by large number of sensors expected in a large area e-skin such as the whole-body skin of a robot.
View Article and Find Full Text PDFAppl Microbiol Biotechnol
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National Engineering Research Center of Green Feeds and Healthy Livestock Industry, Hangzhou, 310058, Zhejiang, China.
The widespread use of antibiotics has led to the emergence of multidrug-resistant bacteria, which pose significant threats to animal health and food safety. Host defense peptides (HDPs) have emerged as promising alternatives because of their unique antimicrobial properties and minimal resistance induction. However, the high costs associated with HDP production and incorporation into animal management practices hinder their widespread application.
View Article and Find Full Text PDFInt J Environ Health Res
January 2025
Health Sciences Institute, University for International Integration of the Afro-Brazilian Lusophony, Redenção, Ceará, Brazil.
Climate change poses a significant threat to human health. Long-term climate effects on childhood asthma hospitalizations depend on the population's geographic region. These effects in tropical drylands are not well understood.
View Article and Find Full Text PDFWaste Manag Res
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Bohai Rim Energy Research Institute, Northeast Petroleum University, Daqing, Heilongjiang, China.
In this systematic review, advancements in plastic recycling technologies, including mechanical, thermolysis, chemical and biological methods, are examined. Comparisons among recycling technologies have identified current research trends, including a focus on pretreatment technologies for waste materials and the development of new organic chemistry or biological techniques that enable recycling with minimal energy consumption. Existing environmental and economic studies are also compared.
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