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Carbon Balance and Management· 2026Q1

Bitki Rekabeti, Farklı Su Rejimlerinde C3 ve C4 Tahıllarında Karbon Birikimini Düzenler

Plant competition regulates carbon accumulation and partitioning in C3 and C4 cereals under contrasting water regimes

Amanullah

Kısa özet

Bitki rekabeti, C3 ve C4 tahıllarında karbon birikimini ve dağılımını önemli ölçüde değiştirir; karışık ekim alanları ve artan ürün çeşitliliği genellikle bitki başına karbon depolamasını azaltır.

Yapay zekâ ile başlık ve abstract'tan üretildi; tam metin okunmaz.

Ana noktalar

  • Bitki rekabeti, tahıllarda toplam karbon içeriğini (TCC) ve yukarı-yer (ACC) ve aşağı-yer (BCC) biyokütleye dağılımını önemli ölçüde etkiler.
  • Saf ekim alanlarında arpa, çavdar ve yulaf daha fazla TCC biriktirirken, buğday belirli karışık ekim alanlarında birikimi artırmıştır.
  • Mısır, özellikle darılarla yetiştirildiğinde tutarlı bir şekilde en yüksek ACC, BCC ve TCC'yi göstermiştir.
  • İki türün ötesindeki ürün çeşitliliğini artırmak, yoğunlaşan türler arası rekabet nedeniyle genellikle bitki başına karbon birikimini azaltmıştır.

Yapay zekâ ile başlık ve abstract'tan üretildi; tam metin okunmaz.

Özet (abstract)

Carbon sequestration in agroecosystems plays a pivotal role in regulating the global carbon cycle and mitigating climate change. Cereal-based cropping systems occupy a substantial proportion of global agricultural land; however, the influence of plant competition on carbon accumulation and partitioning within these systems remains insufficiently quantified. This study investigated how intra- and inter-specific competition affects total carbon content (TCC) and its allocation to above-ground carbon (ACC) and below-ground carbon (BCC) in cool-season (C3) and warm-season (C4) cereals under contrasting water regimes. Two controlled pot experiments were conducted using four C3 cereals (wheat, barley, rye, and oats) and three C4 cereals (corn, sorghum, and foxtail millet) grown in pure and mixed stands. Carbon accumulation was estimated using biomass-derived carbon coefficients. Results revealed significant species-specific and competition-driven differences in carbon partitioning. Barley, rye, and oats accumulated higher TCC in pure stands, whereas wheat exhibited improved carbon accumulation under specific mixed stands. In warm-season cereals, corn consistently showed the highest ACC, BCC, and TCC, particularly when grown with millets. Under the specific conditions of this study, C4 cereals exhibited greater carbon accumulation than C3 cereals, reflecting inherent photosynthetic advantages; however, because the two experiments differed in species, plant density, and treatment structure, direct comparisons between C3 and C4 cereals require further validation under more uniform experimental conditions. Importantly, increasing crop diversity from two-species to three- or four-species mixtures generally reduced per-plant carbon accumulation due to intensified interspecific competition. Carbon allocation was predominantly above-ground; however, below-ground carbon varied significantly with competition intensity and water regime. These findings demonstrate that plant competition is a critical but underexplored driver of agroecosystem carbon balance. Understanding competition-mediated carbon partitioning can guide the design of climate-smart cropping systems that enhance plant carbon content while sustaining productivity.

Yazarların özeti; kaynağından alınmıştır. Carbon Balance and Management, 2026 · DOI ↗

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Alan: Toprak Bilimi

Soil ScienceAgricultural and Biological Sciences