生态环境学报 ›› 2026, Vol. 35 ›› Issue (9): 1458-1468.DOI: 10.16258/j.cnki.1674-5906.2026.09.012
梁小佳1(
), 尹光彩1, 苏鹏基2, 周燕敏2, 郭治兴2, 钟松雄2,*(
)
收稿日期:2026-01-16
修回日期:2026-07-12
接受日期:2026-08-05
出版日期:2026-09-18
发布日期:2026-09-16
通讯作者:
钟松雄, E-mail: 作者简介:梁小佳(1999年生),女,硕士研究生,研究方向为基于同位素技术下的土壤-水稻系统金属迁移转运机制。E-mail: 2452628435@qq.com
基金资助:
Liang Xiaojia1(
), Yin Guangcai1, Su Pengji2, Zhou Yanmin2, Guo Zhixing2, Zhong Songxiong2,*(
)
Received:2026-01-16
Revised:2026-07-12
Accepted:2026-08-05
Online:2026-09-18
Published:2026-09-16
摘要:
【目的】为降低稻米籽粒Cd积累及其潜在健康风险,本研究旨在提升Cd污染稻田土壤的原位修复效能。【方法】以玉米芯生物炭、热裂解牡蛎壳及其共热裂解复合钝化剂为对象,通过盆栽试验系统考察不同钝化剂对土壤Cd形态、水稻吸收转运Cd和籽粒Cd积累的影响,并结合XRD、FTIR、BET和SEM-EDS等手段对钝化剂进行表征分析。【结果】不同钝化剂均能降低土壤可交换态Cd比例(8.05%-23.0%),增强根表铁膜对Cd的截留作用(15.7%-38.8%),降低Cd由根向地上部的转运系数(12.5%-27.9%)及地上部Cd质量分数(9.17%-23.4%),并提高植株生物量(19.4%-44.2%)。其中,玉米芯-牡蛎壳共热裂解复合钝化剂处理效果最优,其稻米Cd质量分数降低57.1%。钝化剂表征结果显示,复合钝化剂同时保留了生物炭的碳质骨架和含氧官能团,以及牡蛎壳的CaCO3矿物相,形成了碳相-钙相复合界面。【结论】该复合钝化剂可通过促进土壤Cd形态稳定化、增强水稻根表铁膜截留、提高根部固定能力并抑制Cd由根向地上部转运等多重途径,最终显著降低稻米Cd积累。研究结果表明,玉米芯-牡蛎壳共热裂解复合钝化剂在Cd污染稻田原位修复中具有较好的应用潜力。
中图分类号:
梁小佳, 尹光彩, 苏鹏基, 周燕敏, 郭治兴, 钟松雄. 玉米芯-牡蛎壳共热裂解复合钝化剂协同阻控水稻镉积累机制研究[J]. 生态环境学报, 2026, 35(9): 1458-1468.
Liang Xiaojia, Yin Guangcai, Su Pengji, Zhou Yanmin, Guo Zhixing, Zhong Songxiong. Mechanisms of Synergistic Inhibition of Cadmium Accumulation in Rice by a Corncob-Oyster Shell Co-pyrolyzed Composite Passivator[J]. Ecology and Environmental Sciences, 2026, 35(9): 1458-1468.
| 处理 | pH | 电导率(EC)/ (mS·cm−1) | 全镉质量 分数/ (mg·kg−1) | 比表面积/ (m2·g−1) | 平均 孔径/ nm | 总孔容/ (cm3·g−1) |
|---|---|---|---|---|---|---|
| 牡蛎壳 | 11.8 | 4.43 | 0.01 | 未检出 | 未检出 | 未检出 |
| 玉米芯 | 10.4 | 3.19 | 0.04 | 254 | 1.81 | 0.115 |
| 玉米芯+牡蛎壳 | 11.7 | 5.14 | 未检出 | 55.3 | 2.26 | 0.031 |
表1 钝化剂理化性质
Table 1 Physicochemical properties of passivator
| 处理 | pH | 电导率(EC)/ (mS·cm−1) | 全镉质量 分数/ (mg·kg−1) | 比表面积/ (m2·g−1) | 平均 孔径/ nm | 总孔容/ (cm3·g−1) |
|---|---|---|---|---|---|---|
| 牡蛎壳 | 11.8 | 4.43 | 0.01 | 未检出 | 未检出 | 未检出 |
| 玉米芯 | 10.4 | 3.19 | 0.04 | 254 | 1.81 | 0.115 |
| 玉米芯+牡蛎壳 | 11.7 | 5.14 | 未检出 | 55.3 | 2.26 | 0.031 |
| 编号 | 处理 | 具体操作 |
|---|---|---|
| CK | CK | 不施加任何改良剂,常规水分管理 |
| T1 | 热裂解后牡蛎壳 | 于移栽前1周施加,其他控制同CK |
| T2 | 玉米芯生物炭 | 于移栽前1周施加,其他控制同CK |
| T3 | 共热裂解复合钝化剂 | 于移栽前1周施加,其他控制同CK |
表2 试验处理组信息
Table 2 Treatments and details of the pot experiment
| 编号 | 处理 | 具体操作 |
|---|---|---|
| CK | CK | 不施加任何改良剂,常规水分管理 |
| T1 | 热裂解后牡蛎壳 | 于移栽前1周施加,其他控制同CK |
| T2 | 玉米芯生物炭 | 于移栽前1周施加,其他控制同CK |
| T3 | 共热裂解复合钝化剂 | 于移栽前1周施加,其他控制同CK |
| 处理 | pH | 阳离子交换量(CEC)/(cmol·kg−1) | 总碳(TC)质量分数/ % | 全镉质量分数/ (mg·kg−1) |
|---|---|---|---|---|
| CK | 5.6 | 8.99 | 1.45 | 4.96 |
| T1 | 6.97 | 9.32 | 1.55 | 5.35 |
| T2 | 6.14 | 9.13 | 1.66 | 5.06 |
| T3 | 6.84 | 9.61 | 1.77 | 5.38 |
表3 根系土壤理化性质
Table 3 Physicochemical properties of rhizosphere soil
| 处理 | pH | 阳离子交换量(CEC)/(cmol·kg−1) | 总碳(TC)质量分数/ % | 全镉质量分数/ (mg·kg−1) |
|---|---|---|---|---|
| CK | 5.6 | 8.99 | 1.45 | 4.96 |
| T1 | 6.97 | 9.32 | 1.55 | 5.35 |
| T2 | 6.14 | 9.13 | 1.66 | 5.06 |
| T3 | 6.84 | 9.61 | 1.77 | 5.38 |
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