Scientia Agricultura Sinica ›› 2026, Vol. 59 ›› Issue (6): 1203-1216.doi: 10.3864/j.issn.0578-1752.2026.06.005

• TILLAGE & CULTIVATION·PHYSIOLOGY & BIOCHEMISTRY·AGRICULTURE INFORMATION TECHNOLOGY • Previous Articles     Next Articles

Effects of Calcium Peroxide on Root Morphology and Yield Formation of Summer Maize in Waterlogging Farmland

ZHOU XinJie(), REN Hao, CHEN YingLong, ZHANG JiWang, ZHAO Bin, REN BaiZhao, LIU Peng, WANG HongZhang()   

  1. College of Agronomy, Shandong Agricultural University/Huang-Huai-Hai Regional Maize Technology Innovation Center, Taian 271018, Shandong
  • Received:2025-08-04 Accepted:2026-02-14 Online:2026-03-16 Published:2026-03-24
  • Contact: WANG HongZhang

Abstract:

【Objective】In the context of global climate change, frequent extreme rainfall has exacerbated farmland waterlogging, which severely restricts high and stable yields of maize. This study aimed to elucidate the regulatory mechanisms of calcium peroxide (CaO2) application on root morphology and yield formation in summer maize under waterlogged field conditions, for providing the theoretical support for stress-resistant and stable-yield cultivation of maize under waterlogging stress. 【Method】The experiment was conducted at the Huang-Huai-Hai Regional Maize Technology Innovation Center, Shandong Agricultural University during the 2023-2024 summer maize growing season. Using the maize variety Denghai 605 (DH605) and a randomized complete block design, treatments consisted of CaO2 application and a non-amended control (CK). At the V3 stage of summer maize, artificial waterlogging was simulated. The effects of CaO2 application were systematically investigated on: (1) soil oxygen concentration in the 0-40 cm profile; (2) maize root morphology parameters (total root length, total root surface area, total root volume, root dry weight); (3) leaf area index (LAI), SPAD value, photosynthetic parameters (net photosynthetic rate (Pn), stomatal conductance (Gs), intercellular CO2 concentration (Ci), transpiration rate (Tr)) and aboveground dry matter accumulation; and (4) grain filling characteristics, yield formation. 【Result】Under waterlogging stress, two-year results indicate that CaO2 application significantly improved the soil oxygen environment. During a total of 10 measurements from the start of the treatment to 10 days after the end of the treatment, the average oxygen content in the 0-20 cm and 20-40 cm soil layers increased by 7.38% and 7.44%, respectively, compared with the control (CK), averaged over two years. Root morphology was markedly altered: at the flowering stage, total root length, total root surface area, total root volume, and root dry weight increased by 51.63%, 44.10%, 39.81% and 51.98% versus CK, respectively; canopy photosynthetic performance was significantly enhanced: maximum LAI and SPAD value at the flowering stage increased by 11.28% and 11.61%, respectively. At the flowering stage, the Pn, Gs, and Tr of the ear leaf increased by 23.84%, 30.63%, and 85.99%, respectively, while dry matter accumulation at maturity increased by 31.51%. Grain filling parameters improved: maximum grain filling rate, mean grain filling rate, grain weight at maximum filling rate, and grain weight at maturity increased by 7.29%, 7.29%, 5.81%, and 6.24%, respectively, compared with CK. CaO2 synergistically increased kernel number per ear and 1000-grain weight, with average two-year increases of 39.98% and 5.00%, respectively, ultimately increasing grain yield by 50.77% under CK. 【Conclusion】Calcium peroxide application mitigated waterlogging stress and enhanced grain yield in summer maize by optimizing soil oxygen environment, remodeling root morphology, improving canopy photosynthetic efficiency and increasing dry matter accumulation, thereby increasing the grain-filling rate. This measure significantly increased grain yield by simultaneously increasing kernel number per ear and 1000-grain weight. This study provided a novel agronomic approach for stabilizing and increasing maize yield under waterlogging stress at the seedling stage.

Key words: waterlogging, calcium peroxide, root morphology, grain filling characteristics, yield, maize

Fig. 1

Changes of precipitation and temperature during the summer maize season at the experimental site"

Fig. 2

Effect of calcium peroxide application on soil oxygen content in waterlogged summer maize fields * significant difference at P<0.05 level; ** significant difference at P<0.01 level; ns: No significant difference at the 0.05 probability level. CK: No calcium peroxide treatment; CaO2: Calcium peroxide treatment applied. The same as below"

Table 1

Effect of calcium peroxide application on root morphology of summer maize under waterlogging stress"

年份
Year
处理
Treatment
根系干重
Root dry weight
(g/plant)
总根长
Total root length
(m/plant)
总根表面积
Total root surface area
(dm2/plant)
总根体积
Total root volume
(cm3/plant)
2023 CK 6.58±1.32b 44.92±0.77b 22.72±2.11b 144.63±13.87b
CaO2 9.56±0.55a 70.33±2.54a 34.58±1.41a 195.56±12.00a
2024 CK 6.00±0.17b 64.84±2.84b 33.27±2.23b 140.57±1.89b
CaO2 9.52±0.55a 95.12±1.52a 45.23±0.83a 202.99±11.09a
ANOVA
年份 Year (Y) ns ** ** ns
处理 Treatment (T) ** ** ** **
Y×T ns ns ns ns

Fig. 3

Effect of calcium peroxide application on leaf area index of summer maize under waterlogging stress V4: 4th-leaf fully expanded stage; V6: 6th-leaf fully expanded stage; V12: 12th-leaf fully expanded stage; VT: Tasseling; R3: Milk stage. The same as below"

Fig. 4

Effect of calcium peroxide application on SPAD values of summer maize under waterlogging stress"

Table 2

Effect of calcium peroxide application on photosynthetic parameters of summer maize under waterlogging stress"

处理 Treatment Pn (µmol·m-2 s-1) Gs (mmol·m-2 s-1) Ci (μmol·mol-1) Tr (mol·m-2 s-1)
CK 29.64±1.64b 259.64±21.78b 109.47±11.67a 4.75±0.65b
CaO2 36.71±2.12a 339.17±39.16a 117.73±3.28a 8.83±0.45a

Fig. 5

Effect of calcium peroxide application on aboveground dry matter accumulation of summer maize under waterlogging stress"

Fig. 6

Effect of calcium peroxide application on dry weight of summer maize kernels under waterlogging stress"

Table 3

Effect of calcium peroxide application on grain filling parameters of summer maize under waterlogging stress"

年份
Year
处理
Treatment
生长曲线方程
Growth curve
parametric equation
相关系数
Correlation
coefficients
Wmax
(g/100 grains)
Gmax
(g/100 grains·d)
Gave
(g/100 grains·d)
P
(d)
2023 CK y=29.41/(1+69.35e-0.15x) 1.00 14.70±0.17b 1.08±0.03b 0.66±0.02b 40.94±1.51a
CaO2 y=30.75/(1+84.63e-0.15x) 1.00 15.38±0.30a 1.16±0.01a 0.71±0.01a 39.78±1.18a
2024 CK y=25.50/(1+113.03e-0.19x) 0.99 12.75±0.12b 1.20±0.03b 0.73±0.02b 31.99±0.48a
CaO2 y=27.30/(1+68.84e-0.19x) 0.99 13.65±0.08a 1.28±0.03a 0.78±0.02a 32.01±0.86a
ANOVA
年份 Year (Y) ** ** ** **
处理 Treatment (T) ** ** ** ns
年份×处理 Y×T ns ns ns ns

Table 4

Effects of calcium peroxide on yield components and yield of summer maize under waterlogging stress"

年份
Year
处理
Treatment
公顷穗数
Ears number (×104 ears/hm2)
穗粒数
Grains per ear
千粒重
1000-grain weight (g)
产量
Yield (t·hm-2)
2023 CK 6.44±0.19a 420.73±20.11b 316.47±3.75b 8.57±0.21b
CaO2 6.74±0.06a 466.71±10.10a 338.39±7.00a 10.64±0.05a
2024 CK 6.15±0.17a 275.93±23.22b 268.06±1.69b 4.54±0.30b
CaO2 6.26±0.17a 466.42±35.10a 276.28±2.34a 8.06±0.50a
ANOVA
年份 Year (Y) ** ** ** **
处理 Treatment (T) ns ** ** **
Y×T ns ** * **

Fig. 7

Analysis of the relationship between the indicators OC(0-20): Average oxygen content in 0-20 cm soil layer; OC(20-40) : Average oxygen content in 20-40 cm soil layer; RL: Total root length at flowering stage; RSA: Total root surface area at flowering stage; RV: Total root volume at flowering stage; RDW: Root dry weight at flowering stage; VT-LAI: LAI at flowering stage; VT-SPAD: SPAD value at flowering stage; VT-DMA: Dry matter accumulation at flowering stage; GPE: Grains per ear; TGW: 1000-grain weight"

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