Article Highlights
Updates every hour. Last Updated: 15-May-2026 19:16 ET (15-May-2026 23:16 GMT/UTC)
New concrete formula creates stronger structures that absorb carbon dioxide from the air
Biochar Editorial Office, Shenyang Agricultural UniversityEngineers have developed an innovative concrete mix that is not only stronger than conventional concrete but also actively removes carbon dioxide from the atmosphere. A new report in Carbon Research details how the strategic addition of natural materials can turn a major source of emissions into a tool for environmental cleanup. Researchers from Mepco Schlenk Engineering College in India have identified an optimal formula that enhances structural integrity while creating a sustainable building material for a carbon-conscious world.
The escalating concentration of atmospheric CO₂, largely driven by cement manufacturing and fossil fuel combustion, presents a significant environmental challenge. To address this, a team led by Srinivasan Revathi explored the potential of natural additives to create a CO₂-absorbing concrete. The investigation focused on zeolite, a porous mineral, and bamboo biochar, a carbon-rich substance. These materials were selected for their large pore volumes and high specific surface areas, which are ideal for capturing gas molecules.
- Journal
- Carbon Research
Unlocking winter's secrets: How microbes shape organic matter in cold-arid lakes
Biochar Editorial Office, Shenyang Agricultural UniversityLakes in cold-arid regions experience significant environmental shifts during their freezing periods, often leading to an enrichment of nutrients that can precipitate harmful algal blooms and pose risks to aquatic ecosystems. A critical component of these nutrients is dissolved organic matter (DOM), which plays a pivotal role in the global carbon cycle. Despite its importance, the intricate mechanisms governing DOM transfer between ice and water, especially under microbial influence, have remained largely obscure. A recent investigation focused on two distinct lakes in China's Yellow River Basin—the saline Daihai Lake and the grassy Wuliangsuhai Lake—to illuminate these hidden processes.
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- Carbon Research
- Funder
- National Natural Science Foundation of China, Science and Technology Plan Project of the Inner Mongolia Autonomous Region
Human disturbance in Nigerian forest reserve alters carbon storage dynamics
Biochar Editorial Office, Shenyang Agricultural UniversityA new analysis from the Ise-Ekiti Forest Reserve in Southwestern Nigeria provides a nuanced look at how human activities affect the carbon-storing capabilities of tropical forests. Researchers from the Institute of Ecology and Environmental Studies and the Department of Botany at Obafemi Awolowo University investigated the intricate connection between biomass, carbon stock, and potential CO₂ emissions in woody plants. The work compares sections of the forest with minimal human interference to areas impacted by activities like logging and agricultural expansion, offering critical data for conservation and climate change mitigation strategies.
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- Carbon Research
AI model predicts "good" and "bad" properties of biochar before it's even made
Biochar Editorial Office, Shenyang Agricultural UniversityA team of scientists at Northwest A and F University has developed a data-driven framework that can accurately predict the characteristics of an enigmatic substance within biochar known as persistent free radicals (PFRs). Biochar, a charcoal-like material produced from biomass, is widely used to improve soil fertility and remove environmental contaminants. Its effectiveness is tied to PFRs, which can have both beneficial and detrimental effects. This new predictive capability allows for the design of customized biochar, ensuring its optimal performance for specific applications.
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- Carbon Research
- Funder
- National Natural Science Foundation of China, National Natural Science Foundation of China, Introduction Plan for High end Foreign Experts
Unseen invaders: Microplastics reshape Earth's carbon cycle and threaten plant health
Biochar Editorial Office, Shenyang Agricultural UniversityThe terrestrial environment, a vast and complex reservoir, is experiencing an alarming influx of microplastic pollution, accumulating at rates significantly exceeding marine environments. New research, published in Carbon Research, synthesizes a wealth of existing literature to meticulously examine how these pervasive plastic fragments interact with soil, altering its fundamental properties, influencing the soil carbon pool, and affecting the performance of terrestrial plants. This extensive review underscores the urgent need to understand and mitigate the subtle yet profound ecological transformations driven by microplastics.
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- Carbon Research
- Funder
- National Science Foundation for Distinguished Young Scholars, National Natural Science Foundation
Indonesia's dual environmental challenge: energy choices shape future carbon footprint
Biochar Editorial Office, Shenyang Agricultural UniversityGlobal environmental degradation, driven by increasing carbon dioxide (CO₂) emissions and expanding ecological footprints, presents a critical planetary risk. This situation is frequently linked to heavy reliance on non-renewable energy and substantial economic activity. Focusing on Indonesia, a significant player in Southeast Asia, a recent investigation explores the nuanced relationships between non-renewable energy (coal, gas, and oil), renewable energy, economic growth, and capital formation, and their influence on CO₂ emissions and the ecological footprint over a span of nearly six decades. The collaborative work, led by Ghalieb Mutig Idroes and Irsan Hardi, with contributions from Md. Hasanur Rahman, Mohd Afjal, Teuku Rizky Noviandy, and Rinaldi Idroes from Universitas Syiah Kuala and affiliated institutions, offers crucial insights for Indonesia’s path toward environmental sustainability.
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- Carbon Research
Unseen alliance in the soil: Organic matter boosts "underdog" microbes
Biochar Editorial Office, Shenyang Agricultural UniversityA hidden world of microbial competition exists within the soil, where bacteria battle for resources and survival. Central to this is the ability of some microbes, known as exoelectrogens, to transfer electrons outside their cells to minerals like iron oxides, a process vital for nutrient cycling. For decades, scientific attention has focused on "strong" exoelectrogens like Geobacter, renowned for their efficiency. A new investigation by scientists at the Guangdong Academy of Sciences, including Baoli Qin, Yu Huang, and Yundang Wu, reveals how a common soil component—dissolved organic matter (DOM)—dramatically alters this competitive landscape, giving an advantage to a vast, previously overlooked group of "weak" exoelectrogens.
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- Carbon Research
- Funder
- National Natural Science Foundation of China, National Natural Science Foundation of China, GDAS’ Project of Science and Technology Development, National key research and development program, Chemical Synthesis and Pollution Control Key Laboratory of Sichuan Province
Fruit-based farming systems boost climate resilience and farmer income in India's semi-arid regions
Biochar Editorial Office, Shenyang Agricultural UniversityA team of scientists in India has quantified the substantial environmental and economic advantages of integrating fruit trees into agricultural landscapes. The investigation, led by researchers from Banaras Hindu University, Banda University of Agriculture and Technology, and Dr YS Parmar University of Horticulture and Forestry, demonstrates that fruit-based agroforestry offers a potent strategy for climate change mitigation and improves livelihood security for farmers in resource-scarce semi-arid regions.
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- Carbon Research