[1] |
BARFORD C C, WOFSY S C, GOULDEN M L, et al. Factors controlling long- and short-term sequestration of atmospheric CO2 in a mid-latitude forest [J]. Science, 2001, 294(5547): 1688 − 1691. |
[2] |
周国模. 毛竹林生态系统中碳储量、固定及其分配与分布的研究[D]. 杭州: 浙江大学, 2006.
ZHOU Guomo. Carbon Density, Storage and Distribution in Bamboo Forest [D]. Hangzhou: Zhejiang University, 2006. |
[3] |
HUANG Zhangting, LI Yongfu, CHANG S X. Phytolith-occluded organic carbon in intensively managed Lei bamboo (Phyllostachys praecox) stands and implications for carbon sequestration [J]. Canadian Journal of Forest Reseach, 2015, 45: 1019 − 1025. |
[4] |
鲁如坤. 土壤农业化学分析方法[M]. 北京: 中国农业科技出版社, 2000.
LU Rukun. The Analysis Method of Soil Agricultural Chemistry [M]. Beijing: China Agricultural Science and Technology Press, 2000. |
[5] |
王永吉, 吕厚远. 植物硅酸体的研究及应用[M]. 北京: 海洋出版社, 1993: 1 − 228.
WANG Yongji, LÜ Houyuan. Phytolith Study and Its Application Content [M]. Beijing: Ocean Press, 1993: 1 − 228. |
[6] |
孟赐福, 姜培坤, 徐秋芳, 等. 植物生态系统中的植硅体闭蓄有机碳及其在全球土壤碳汇中的重要作用[J]. 浙江农林大学学报, 2013, 30(6): 921 − 929.
MENG Cifu, JIANG Peikun, XU Qiufang, et al. PhytOC in plant ecological system and its important roles in the global soil carbon sink [J]. Journal of Zhejiang A&F University, 2013, 30(6): 921 − 929. |
[7] |
LAL R. Soil carbon sequestration to mitigate climate change [J]. Geoderma, 2004, 123(1): 1 − 22. |
[8] |
何珊琼, 黄张婷, 吴家森, 等. 热带、亚热带典型森林-土壤系统植硅体碳演变规律[J]. 应用生态学报, 2016, 27(3): 697 − 704.
HE Shanqiong, HUANG Zhangting, WU Jiasen, et al. Evolution pattern of phytolith-occluded carbon in typical forest-soil ecosystems in tropics and subtropics, China [J]. Chinese Journal of Applied Ecology, 2016, 27(3): 697 − 704. |
[9] |
武仁杰, 邢玮, 葛之葳, 等. 4种林分凋落叶不同分解阶段化学计量特征[J]. 浙江农林大学学报, 2023, 40(1): 155 − 163.
WU Renjie, XING Wei, GE Zhiwei, et al. Stoichiometric characteristics of leaf litter at different decomposition stages in 4 forest types [J]. Journal of Zhejiang A&F University, 2023, 40(1): 155 − 163. |
[10] |
杨杰. 中国重要散生竹生态系统植硅体碳汇研究[D]. 杭州: 浙江农林大学, 2016.
YANG Jie. Phytolith-occluded Carbon Sequestration of Important Monopodial Bamboo Ecosystem in China [D]. Hangzhou: Zhejiang A&F University, 2016. |
[11] |
SAUER D, SACCONE L, CONLEY D J, et al. Review of methodologies for extracting plant-available and amorphous Si from soils and aquatic sediments [J]. Biogeochemistry, 2006, 80(1): 89 − 108. |
[12] |
陈雅文, 韩广轩, 蔡延江. 氮输入影响滨海湿地碳循环过程的模拟研究: 进展与展望[J]. 浙江农林大学学报, 2021, 38(5): 883 − 895.
CHEN Yawen, HAN Guangxuan, CAI Yanjiang. Simulation research on the effects of nitrogen input on carbon cycle process in a coastal wetland: review and prospects [J]. Journal of Zhejiang A&F University, 2021, 38(5): 883 − 895. |
[13] |
SONG Zhaoliang, LIU Hongyan, LI Beilei, et al. The production of phytolith-occluded carbon in China’s forests: implications to biogeochemical carbon sequestration [J]. Global Change Biology, 2013, 19(9): 2907 − 2915. |
[14] |
黄润霞, 孟金柳, 周本智, 等. 施氮和短时光辐射变化条件下毛竹幼苗光合限速因子分析[J]. 广西植物, 2022, 42(3): 406 − 412.
HUANG Runxia, MENG Jinliu, ZHOU Benzhi, et al. Limiting factors of photosynthesis of Phyllostachys edulis seedlings treated with nitrogen fertilized and change of short-term light irradiance [J]. Guihaia, 2022, 42(3): 406 − 412. |
[15] |
杨杰, 李永夫, 黄张婷, 等. 碱溶分光光度法测定植硅体碳含量[J]. 分析化学, 2014, 42(9): 1389 − 1390.
YANG Jie, LI Yongfu, HUANG Zhangting, et al. Determination of phytolith-occluded carbon content using alkali dissolution-spectrophotometry [J]. Chinese Journal of Analytical Chemistre, 2014, 42(9): 1389 − 1390. |
[16] |
熊顺贵. 基础土壤学[M]. 北京: 中国农业大学出版社, 2001.
XIONG Shungui. Pedology [M]. Beijing: China Agricultural University Press, 2001. |
[17] |
GOCKE M, LIANG Wu, SOMMER M, et al. Silicon uptake by wheat: effects of Si pools and pH [J]. Journal of Plant Nutrition and Soil Science, 2013, 176(4): 551 − 560. |
[18] |
MA Jianfeng. Role of silicon in enhancing the resistance of plants to biotic and abiotic stresses [J]. Soil Science &Plant Nutrition, 2004, 50(1): 11 − 18. |
[19] |
MA Jianfeng, MIYAKE Y, TAKAHASHI E. Silicon as a beneficial element for crop plants [J]. Silicon in Agriculture, 2001, 8: 17 − 39. |
[20] |
CASEY W H, KINRADE S D, KNIGHT C T G, et al. Aqueous silicate complexes in wheat, Triticum aestivum L. [J]. Plant Cell &Environment, 2003, 27(1): 51 − 54. |
[21] |
LI Zimin, SONG Zhaoliang, CORNELIS J T. Impact of rice cultivar and organ on elemental composition of phytoliths and the release of bio-available silicon [J/OL]. Frontiers in Plant Science, 2014, 5: 529[2023-08-07]. doi: 10.3389/fpls.2014.00529. |
[22] |
ZUO Xingxing, LÜ Houyuan. Carbon sequestration within millet phytoliths from dry-farming of crops in China [J]. Chinese Science Bulletin, 2011, 56(32): 3451 − 3456. |
[23] |
LI Zimin, SONG Zhaoliang, JIANG Peikun. Biogeochemical sequestration of carbon within phytoliths of wetland plants: a case study of Xixi wetland, China [J]. Chinese Science Bulletin, 2013, 58(20): 2480 − 2487. |
[24] |
PARR J F, SULLIVAN L A, CHEN Bihua, et al. Carbon bio-sequestration within the phytoliths of economic bamboo species [J]. Global Change Biology, 2010, 16(10): 2661 − 2667. |
[25] |
SONG Zhaoliang, LIU Hongyan, SI Yong, et al. The production of phytoliths in China’s grasslands: implications to the biogeochemical sequestration of atmospheric CO2 [J]. Global Change Biology, 2012, 18(12): 3647 − 3653. |
[26] |
LI Zimin, SONG Zhaoliang, LI Beilei. The production and accumulation of phytolith-occluded carbon in Baiyangdian reed wetland of China [J]. Applied Geochemistry, 2013, 37: 117 − 124. |
[27] |
杨杰, 吴家森, 姜培坤, 等. 苦竹林植硅体碳与硅的研究[J]. 自然资源学报, 2016, 31(2): 299 − 309.
YANG Jie, WU Jiasen, JIANG Peikun, et al. Study on phytolith-occluded organic carbon and silicon in a Pleioblastus amarus forest [J]. Journal of Natural Resources, 2016, 31(2): 299 − 309. |
[28] |
何电源, 邢廷铣, 周卫军, 等. 15N标记稻草中N、C在羊体内的转化和利用[J]. 应用生态学报, 1993, 4(2): 161 − 166.
HE Dianyuan, XING Tingxian, ZHOU Weijun, et al. Transformation and utilization of N and C in 15N-labelled rice straw by goat [J]. Chinese Journal of Applied Geology, 1993, 4(2): 161 − 166. |
[29] |
何珊琼, 孟赐福, 黄张婷, 等. 土壤植硅体碳稳定性的研究进展与展望[J]. 浙江农林大学学报, 2016, 33(3): 506 − 515.
HE Shanqiong, MENG Cifu, HUANG Zhangting, et al. Research progress and forecast of phytolith-occluded organic carbon stability in soil [J]. Journal of Zhejiang A&F University, 2016, 33(3): 506 − 515. |
[30] |
HUANG Chengpeng, LI Yongchun, JIN Lin, et al. Effects of long-term planting on PhytOC storage and its distribution in soil physical fractions in moso bamboo forests in subtropical China [J]. Journal of Soils and Sediments, 2020, 20(3): 2317 − 2329. |
[31] |
HUANG Chengpeng, LI Yongchun, WU Jiasen, et al. Intensive management increases phytolith-occluded carbon sequestration in moso bamboo plantations in subtropical China [J/OL]. Forests, 2019, 10(10): 883[2023-08-07]. doi: 10.3390/f10100883. |
[32] |
陈念康, 介冬梅, 高桂在, 等. 植硅体元素封存研究进展[J]. 微体古生物学报, 2022, 39(4): 348 − 360.
CHEN Niankang, JIE Dongmei, GAO Guizai, et al. Advance in the study of phytolith-occluded element sequestration [J]. Acta Micropalaeontologica Sinica, 2022, 39(4): 348 − 360. |
[33] |
YANG Jie, WU Jiasen, JIANG Peikun, et al. A study of phytolith-occluded carbon stock in monopodial bamboo in China [J/OL]. Scientific Reports, 2015, 5: 13292[2023-08-07]. doi: 10.1038/srep13292. |
[34] |
LI Zimin, MEUNIER J D, DELVAUX B. Aggregation reduces the release of bioavailable silicon from allophane and phytolith [J]. Geochimica et Cosmochimica Acta, 2022, 325: 87 − 105. |
[35] |
LIU Lijun, CHANG S X, HUANG Chengpeng, et al. Enhancement of phytolith-occluded carbon accumulation of moso bamboo response to temperatures elevation and different fertilization [J/OL]. Frontiers in Plant Science, 14: 1144961[2023-08-07]. doi: 10.3389/ fpls.2023.1144961. |
[36] |
CABANES D, WEINER S, SHAHACK-GROSS R. Stability of phytoliths in the archaeological record: a dissolution study of modern and fossil phytoliths [J]. Journal of Archaeological Science, 2011, 38(9): 2480 − 2490. |