Page 100 - Read online
P. 100
Lal. Carbon Footprints 2026, 5, 10 Page 17 of 20
22. Jin, V. L.; Schmer, M. R.; Stewart, C. E.; Sindelar, A. J.; Varvel, G. E.; Wienhold, B. J. Long-term no-till and stover retention each
decrease the global warming potential of irrigated continuous corn. Glob. Chang. Biol. 2017, 23, 2848-62. DOI PubMed
23. Ghimire, R.; Norton, U.; Bista, P.; Obour, A. K.; Norton, J. B. Soil organic matter, greenhouse gases and net global warming potential of
irrigated conventional, reduced-tillage and organic cropping systems. Nutr. Cycl. Agroecosyst. 2017, 107, 49-62. DOI
24. Timmermann, T.; Yip, C.; Yang, Y. Y.; et al. Harnessing microbes to weather native silicates in agricultural soils for scalable carbon
dioxide removal. Glob. Chang. Biol. 2025, 31, e70216. DOI PubMed PMC
25. Leng, C.; Zhang, Y.; Zhao, Q.; et al. Synergistically mitigating nitric oxide emission by co-applications of biochar and nitrification
inhibitor in a tropical agricultural soil. Environ. Res. 2022, 214, 113989. DOI
26. Smith, P. Soil carbon sequestration and biochar as negative emission technologies. Glob. Chang. Biol. 2016, 22, 1315-24. DOI PubMed
27. Ayaz, M.; Feizienė, D.; Tilvikienė, V.; Feiza, V.; Baltrėnaitė-Gedienė, E.; Ullah, S. Biochar with inorganic nitrogen fertilizer reduces
direct greenhouse gas emission flux from soil. Plants 2023, 12, 1002. DOI PubMed PMC
28. Elkhlifi, Z.; Iftikhar, J.; Sarraf, M.; et al. Potential role of biochar on capturing soil nutrients, carbon sequestration and managing
environmental challenges: a review. Sustainability 2023, 15, 2527. DOI
29. Page, K. L.; Dang, Y. P.; Menzies, N. W.; Dalal, R. C. No-till systems to sequester soil carbon: potential and reality. In: Dang YP, Dalal
RC, Menzies NW, editors. No-till farming systems for sustainable agriculture. Cham: Springer International Publishing; 2020. pp.
301-17. DOI
30. Schindlbacher, A.; Beck, K.; Holzheu, S.; Borken, W. Inorganic carbon leaching from a warmed and irrigated carbonate forest soil.
Front. For. Glob. Change. 2019, 2, 40. DOI
31. Fan, J.; Luo, R.; Liu, D.; et al. Stover retention rather than no-till decreases the global warming potential of rainfed continuous maize
cropland. Field. Crops. Res. 2018, 219, 14-23. DOI
32. Fernández, F. J.; Sanchez-Arias, V.; Rodriguez, L.; Villasenor, J. Feasibility of composting combinations of sewage sludge, olive mill
waste and winery waste in a rotary drum reactor. Waste. Manag. 2010, 30, 1948-56. DOI
33. Srinivasarao, C.; Vittal, K. P. R.; Venkateswarlu, B.; et al. Carbon stocks in different soil types under diverse rainfed production systems
in tropical India. Commun. Soil. Sci. Plant. Anal. 2009, 40, 2338-56. DOI
34. Nazir, M. J.; Li, G.; Nazir, M. M.; et al. Harnessing soil carbon sequestration to address climate change challenges in agriculture. Soil.
Till. Res. 2024, 237, 105959. DOI
35. Mohamad, R. S.; Verrastro, V.; Al, Bitar. L.; Roma, R.; Moretti, M.; Al, Chami. Z. Effect of different agricultural practices on carbon
emission and carbon stock in organic and conventional olive systems. Soil. Res. 2016, 54, 173-81. DOI
36. Stockmann, U.; Adams, M. A.; Crawford, J. W.; et al. The knowns, known unknowns and unknowns of sequestration of soil organic
carbon. Agr. Ecosyst. Environ. 2013, 164, 80-99. DOI
37. Dynarski, K. A.; Bossio, D. A.; Scow, K. M. Dynamic stability of soil carbon: reassessing the “permanence” of soil carbon sequestration.
Front. Environ. Sci. 2020, 8, 514701. DOI
38. Singh, P.; Dheri, G. S.; Nazir, G. Management of saline and sodic soils for carbon sequestration. Commun. Soil. Sci. Plant. Anal. 2025,
56, 2618-39. DOI
39. Zheng, J.; Cheng, K.; Pan, G.; et al. Perspectives on studies on soil carbon stocks and the carbon sequestration potential of China. Chin.
Sci. Bull. 2011, 56, 3748-58. DOI
40. Sarkar, R.; Corriher-olson, V.; Long, C.; Somenahally, A. Challenges and potentials for soil organic carbon sequestration in forage and
grazing systems. Rangeland. Ecol. Manag. 2020, 73, 786-95. DOI
41. Lorenz, K.; Lal, R. Soil organic carbon sequestration in agroforestry systems. A review. Agron. Sustain. Dev. 2014, 34, 443-54. DOI
42. Luo, L.; Wang, J.; Lv, J.; et al. Carbon sequestration strategies in soil using biochar: advances, challenges, and opportunities. Environ.
Sci. Technol. 2023, 57, 11357-72. DOI
43. Ghimire, R.; Clay, D. E.; Thapa, S.; Hurd, B. More carbon per drop to enhance soil carbon sequestration in water-limited environments.
Carbon. Manag. 2022, 13, 450-62. DOI
44. Thamo, T.; Pannell, D. J. Challenges in developing effective policy for soil carbon sequestration: perspectives on additionality, leakage,
and permanence. Climate. Policy. 2016, 16, 973-92. DOI
45. Darwish, T.; Atallah, T.; Fadel, A. Challenges of soil carbon sequestration in the NENA region. SOIL 2018, 4, 225-35. DOI
46. Minasny, B.; Malone, B. P.; Mcbratney, A. B.; et al. Soil carbon 4 per mille. Geoderma 2017, 292, 59-86. DOI
47. Mattila, T. J.; Hagelberg, E.; Söderlund, S.; Joona, J. How farmers approach soil carbon sequestration? Soil. Till. Res. 2022, 215,
105204. DOI
48. Cole, A. P.; Loeb, S. Dietary and lifestyle recommendations that align patient and planetary health. Eur. Urol. Focus. 2023, 9, 869-72.
DOI PubMed
49. Lutz, M. Healthy sustainable food patterns and systems: a planetary urgency. Medwave 2021, 21, e8436. DOI PubMed

