Biochar implications in cleaner agricultural production and environmental sustainability
文献情報
Subhash Babu, Raghavendra Singh, Sanjeev Kumar, Sanjay Singh Rathore, Devideen Yadav, Sanjay Kumar Yadav, Vivek Yadav, Meraj Alam Ansari, Anup Das, Gandhamanagenahalli Adireddy Rajanna, Owais Ali Wani, Rishi Raj, Dinesh Kumar Yadav, Vinod Kumar Singh
Achieving food security while mitigating climate change is the foremost challenge for researchers and policy planners globally. Thus, dual objective approaches/techniques need to be developed, which can potentially increase food production with zero/negative greenhouse gas (GHG) emissions. The global agricultural production system generates a huge amount of bio-waste, which threatens agricultural and environmental sustainability. However, conversion of agricultural waste into biochar can potentially address the food insecurity and climate change challenges concurrently. Biochar production and utilization is proposed as an innovative solution for achieving the Sustainable Development Goals (SDGs), such as zero hunger, poverty, and climate change mitigation, by enhancing farm productivity and reducing/offsetting anthropogenic CO2 emission. Globally, biochar has the potential to increase crop productivity by 11% and reduces 12% human-induced GHG emissions annually. Biochar can potentially sequester ∼0.7–1.8 Gt CO2 (C eq.) y−1 in the soil system. Furthermore, biochar application improves soil health, which facilitates the plant growth and crop productivity. Biochar application can alters the plant physiology and makes the plant system more tolerant against biotic and abiotic stresses. Biochar is also an excellent in situ-sorbent for soil contaminants. However, some inconsistent reports about the utility of biochar are also available. Hence, an in-depth understanding about the uses and impact of biochar on the food production, soil health, and climate change mitigation is highly warranted, for framing the research priorities and policies for developing cleaner and sustainable agricultural production systems.
関連文献
The invertible electrochemical properties and thermal response of a series of gel-type ionic liquids based on polyoxometalates
Xuefei Wu, Yunyan Li, Qingyin Wu, Hong Ding, Wenfu Yan
DOI: 10.1039/C4CP03673E
New molecular-scale information on polystyrene dynamics in PS and PS–BaTiO3 composites from FTIR spectroscopy
D. Olmos, E. V. Martín, J. González-Benito
DOI: 10.1039/C4CP03516J
Surface defects and their impact on the electronic structure of Mo-doped CaO films: an STM and DFT study
Yi Cui, Xiang Shao, Stefano Prada, Livia Giordano, Gianfranco Pacchioni, Hans-Joachim Freund
DOI: 10.1039/C4CP01565G
Formation, isomerization, and dissociation of ε- and α-carbon-centered tyrosylglycylglycine radical cations
Cheuk-Kuen Lai, Xiaoyan Mu, Qiang Hao, Alan C. Hopkinson, Ivan K. Chu
DOI: 10.1039/C4CP03119A
Panchromatic symmetrical squaraines: a step forward in the molecular engineering of low cost blue-greenish sensitizers for dye-sensitized solar cells
J. Park, R. Borrelli, J.-H. Yum, D. Di Censo, M. Grätzel, Md. K. Nazeeruddin, C. Barolo, G. Viscardi
DOI: 10.1039/C4CP04345F
Interaction of crystal water with the building block in Y2Mo3O12 and the effect of Ce3+ doping
Xiansheng Liu, Yongguang Cheng, Erjun Liang, Mingju Chao
DOI: 10.1039/C4CP00144C
Characterization of organic fluorophores for in vivo FRET studies based on electroporated molecules
A. Plochowietz, R. Crawford, A. N. Kapanidis
DOI: 10.1039/C4CP00995A
Adsorption of PNIPAmx-PEO20-PPO70-PEO20-PNIPAmx pentablock terpolymer on gold surfaces: effects of concentration, temperature, block length, and surface properties
Tongquan Chen, Yanping Lu, Tianyou Chen, Xinghong Zhang, Binyang Du
DOI: 10.1039/C3CP54535K
Mechanical properties of mesoporous ceria nanoarchitectures
Thi X. T. Sayle, Beverley J. Inkson, Günter Möbus, Stephen C. Parker, Dean C. Sayle
DOI: 10.1039/C4CP03526G
Ab initio calculations on the 1O2 quenching mechanism by trans-resveratrol
Gloria Mazzone, Marta E. Alberto, Nino Russo, Emilia Sicilia
DOI: 10.1039/C4CP00754A
こちらもおすすめ
1-{3-[5-(エチルカルボンイル)-2,4-ジメチル-1H-ピロロール-3-基]プロパニル}ピペリジン-4-カルボン酸について、適用される法規ガイドラインは何ですか?
この化合物はCAS番号1142209-81-1であり、GHS分類では corrosive (腐食性物質) と classified (分類物質) として指定され...
2,2-二氟-1,3-ベンゾジオキサン-5-カルボキシlic酸とは何ですか?
2,2-二氟-1,3-ベンゾジオキサン-5-カルボキシlic酸は、CAS番号656-46-2の化合物で、化学式はC8H4F2O4です。この化合物は白色の結晶性粉...
8-氯-4-色原酮の代替品はありますか?
8-氯-4-色原酮(CAS番号: 49701-11-3)の代替品には、他の色原酮類似物や、構造が似ている化合物があります。例えば、8-メチル-4-色原酮や、他の...
エチル6,6-ジメチル-4,5,6,7-テトラヒドロ-1H-インドアゼー-3-カルボキシレートとは何ですか?
エチル6,6-ジメチル-4,5,6,7-テトラヒドロ-1H-インドアゼー-3-カルボキシレートは、CAS番号1233243-56-5を有する化合物です。これは有...
4-叔丁基-6-氯-嘧啶に適用される法規ガイドラインは何ですか?
4-叔丁基-6-氯-嘧啶はCAS番号3435-24-3で、GHS分類では毒性物質とみなし、GHSの危険性分類が適用されます。REACH規則では登録が必要で、Eu...
維库溴铵杂质Bはどのように合成されますか?
維库溴铵杂质Bは、アンドロステンデンから始まり、一連の合成反応、包括的な選択性と高い収率で合成されます。具体的には、ブロミド化、酸化、ジマーゼ反応、アミド化など...
2-(4-氟苄基)-吡咯烷の物理化学的性質は何ですか?
CAS番号350017-04-8の2-(4-氟苄基)-吡咯烷は、結晶性の白色粉末です。分子量は199.17 g/molで、水に溶けにくいです。化学反応では比較的...
3-喹啉甲醛(2-チロール-8-エチル)は安全ですか?
3-喹啉甲醛(2-チロール-8-エチル)は一定の毒性を持つため、取扱には注意が必要です。使用する際は適切な防護具を着用し、密閉容器で保管・搬送し、直接的な接触を...
エチル3-(ヒドロキシメチル)-1H-ピロール-2-カルボキシレートはどのように保存すればよいですか?
エチル3-(ヒドロキシメチル)-1H-ピロール-2-カルボキシレートは、室温(25℃)以下で保存し、直射日光を避け、乾燥した環境で保管することが推奨されます。ま...















![1-(Hexopyranosyloxy)-4a,5-dihydroxy-7-methyl-1,4a,5,6,7,7a-hexahydrocyclopenta[c]pyran-7-yl 3-phenylacrylate structure 1-(Hexopyranosyloxy)-4a,5-dihydroxy-7-methyl-1,4a,5,6,7,7a-hexahydrocyclopenta[c]pyran-7-yl 3-phenylacrylate structure](https://static.chemtradehub.com/structs/192/19210-12-9-ecae.webp)