[1] 黄丹青. 薄壳山核桃果皮废弃物对铀的吸附性能研究[D]. 合肥: 安徽农业大学, 2020.

HUANG Danqing. Study on Adsorption Performance of Pecan Fruit Peel Waste to Simulated Uranium[D]. Hefei: Anhui Agricultural University, 2020.
[2] 张小凯, 何丽芝, 陆扣萍, 等. 生物质炭修复重金属及有机物污染土壤的研究进展[J]. 土壤, 2013, 45(6): 970−977.

ZHANG Xiaokai, HE Lizhi, LU Kouping, et al. Use of biochar for remediation of soils contaminated with heavy metals and organic pollutants: a review [J]. Soils, 2013, 45(6): 970−977.
[3] SHCHEMELININA T N, ANCHUGOVA E M. The integrated biotechnology for oil-polluted soil cleanup [J]. Biology Bulletin, 2023, 50(10): 2791−2796.
[4] LI Jingsong, LI Jing, FENG Xiaohui, et al. Straw incorporation: a more effective coastal saline land reclamation approach to boost sunflower yield than straw mulching or burial[J/OL]. Agricultural Water Management, 2024, 305: 109140[2024-12-06]. DOI: 10.1016/j.agwat.2024.109140.
[5] 温美娟, 杨思存, 王成宝, 等. 不同耕作和秸秆还田方式对灰钙土土壤理化性状、酶活性及玉米产量的影响[J]. 生态学杂志, 2025, 44(3): 903−911.

WEN Meijuan, YANG Sicun, WANG Chengbao, et al. Effects of different tillage and straw returning on soil physicochemical properties, enzyme activities in sierozem, and maize yield [J]. Chinese Journal of Ecology, 2025, 44(3): 903−911.
[6] 薛欣欣, 吴小平, 王文斌, 等. 坡度和埋深对橡胶林凋落叶分解及红外光谱特征的影响[J]. 生态学报, 2019, 39(3): 874−883.

XUE Xinxin, WU Xiaoping, WANG Wenbin, et al. Effects of varying slopes and depths on decomposition and infrared spectrum characteristics of leaf litter in a rubber forest [J]. Acta Ecologica Sinica, 2019, 39(3): 874−883.
[7] 王玲, 龙飞宇, 刘佳斌, 等. 有机种植对玉米根际土壤代谢物的影响[J]. 东北农业大学学报, 2022, 53(3): 30−41.

WANG Ling, LONG Feiyu, LIU Jiabin, et al. Effects of organic planting on metabolites in maize rhizosphere soil [J]. Journal of Northeast Agricultural University, 2022, 53(3): 30−41.
[8] 吴国良, 张凌云, 潘秋红, 等. 美国山核桃及其品种性状研究进展[J]. 果树学报, 2003, 20(5): 404−409.

WU Guoliang, ZHANG Linyun, PAN Qiuhong, et al. Advances in study of pecan and its cultivars’characteristics [J]. Journal of Fruit Science, 2003, 20(5): 404−409.
[9] 潘浪波, 段伟, 黄有军. 基于MaxEnt模型预测薄壳山核桃在中国的种植区[J]. 浙江农林大学学报, 2022, 39(1): 76−83.

PAN Langbo, DUAN Wei, HUANG Youjun. Prediction on the potential planting area of Carya illinoinensis in China based on MaxEnt model [J]. Journal of Zhejiang A&F University, 2022, 39(1): 76−83.
[10] 梁琼. 山核桃外果皮活性炭的制备及其吸附性能的研究[D]. 杭州: 浙江农林大学, 2015.

LIANG Qiong. Study on Preparation of Walnuts Shell Activated Carbon and its Properties[D]. Hangzhou: Zhejiang A&F University, 2015.
[11] HU Wenyi, DU Wenxian, BAI Shumin, et al. Phenoloxidase, an effective bioactivity target for botanical insecticide screening from green walnut husks [J]. Natural Product Research, 2018, 32(23): 2848−2851.
[12] FENG Simin, WANG Lei, BELWAL T, et al. Phytosterols extraction from hickory (Carya cathayensis Sarg. ) husk with a green direct citric acid hydrolysis extraction method[J/OL]. Food Chemistry, 2020, 315: 126217[2024-12-06]. DOI: 10.1016/j.foodchem.2020.126217.
[13] 周文君. 湖南省4个薄壳山核桃品种果实生长发育规律及综合评价[D]. 长沙: 中南林业科技大学, 2022.

ZHOU Wenjun. Fruit Growth and Development Regularity and Comprehensive Evaluation of Four Carya illinoensis Varieties in Hunan Province[D]. Changsha: Central South University of Forestry and Technology, 2022.
[14] 鲍示旦. 土壤农化分析[M]. 第3版. 北京: 中国农业出版社, 2000: 25−114.

BAO Shidan. Soil Agrochemical Analysis[M]. 3rd ed. Beijing: China Agriculture Press, 2000: 25−114.
[15] 郑洪元, 许兴辉. 土壤微生物分析方法手册[M]. 北京: 农业出版社, 1986: 55−93.

ZHENG Hongyuan, XU Xinghui. Handbook of Soil Microbial Analysis Methods[M]. Beijing: Agricultural Publishing House, 1986: 55−93.
[16] 侯婷, 袁军, 周文君, 等. 薄壳山核桃青皮分解及养分释放规律[J]. 江西农业大学学报, 2022, 44(5): 1188−1196.

HOU Ting, YUAN Jun, ZHOU Wenjun, et al. Decomposition and nutrient releasing pattern in Carya illinoensis husks [J]. Acta Agriculturae Universitatis Jiangxiensis, 2022, 44(5): 1188−1196.
[17] GARCIA-PAUSAS J, CASALS P, ROMANYA J. Litter decomposition and faunal activity in Mediterranean forest soils: effects of N content and the moss layer [J]. Soil Biology and Biochemistry, 2004, 36(6): 989−997.
[18] 渠心静, 赵冠宇, 耿蕊, 等. 油茶茶枯分解及养分释放规律[J]. 经济林研究, 2019, 37(4): 104−111.

QU Xinjing, ZHAO Guanyu, GENG Rui, et al. Decomposition and nutrient releasing pattern in Camellia oleifera seed meal [J]. Non-wood Forest Research, 2019, 37(4): 104−111.
[19] 刘玉林. 子午岭植被恢复中凋落物分解对土壤有机碳的影响[D]. 杨凌: 西北农林科技大学, 2020.

LIU Yulin. Effects of Litter Decomposition on Soil Organic Carbon in Vegetation Restoration of Ziwuling[D]. Yangling: Northwest A&F University, 2020.
[20] JIANG Xiaojin, LIU Wenjie, WU Jinen, et al. Land degradation controlled and mitigated by rubber based agroforestry systems through optimizing soil physical conditions and water supply mechanisms: a case study in Xishuangbanna, China [J]. Land Degradation & Development, 2017, 28(7): 2277−2289.
[21] 罗佳. 枫香人工林凋落物分解速率及其对土壤养分的影响[D]. 长沙: 中南林业科技大学, 2009.

LUO Jia. Decomposition Rate of the Litter of Artifical Forest of Liquidambar Formosana and Its Effects of Soil Nutrient[D]. Changsha: Central South University of Forestry and Technology, 2009.
[22] 王秋雅. 不同复垦模式对土壤肥力及微生物群落结构的影响[D]. 淮南: 安徽理工大学, 2022.

WANG Qiuya. Effects of Different Reclamation Patterns on Soil Fertility and Microbial Community Structure[D]. Huainan: Anhui University of Science and Technology, 2022.
[23] 谭杰辉, 付双军, 南丽丽, 等. 轮作绿肥对黄土高原半干旱区土壤微生物数量及酶活性的影响[J]. 草原与草坪, 2020, 40(5): 116−123.

TAN Jiehui, FU Shuangjun, NAN Lili, et al. Effects of green manure crop rotation on soil microbial quantity and enzyme activity in semi-arid region of the Loess Plateau [J]. Grassland and Turf, 2020, 40(5): 116−123.
[24] LI Yingzhe, XU Lining, LETUMA P, et al. Metabolite profiling of rhizosphere soil of different allelopathic potential rice accessions[J/OL]. BMC Plant Biology, 2020, 20(1): 265[2024-12-06]. DOI: 10.1186/s12870-020-02465-6.
[25] PATCHETT A, NEWMAN J A. Comparison of plant metabolites in root exudates of Lolium perenne infected with different strains of the fungal endophyte Epichloë festucae var. lolii [J]. Journal of Fungi, 2021, 7(2): 148−148.
[26] LIU Miaomiao, LU Shanva. Plastoquinone and ubiquinone in plants: biosynthesis, physiological function and metabolic engineering[J/OL]. Frontiers in Plant Science, 2016, 7: 1898[2024-12-06]. DOI: 10.3389/fpls.2016.01898.
[27] 程红岩. 旱作农田土壤微生物群落及代谢产物对磷肥管理的响应[D]. 杨凌: 西北农林科技大学, 2022.

CHENG Hongyan. Response of Soil Microbial Communities and Metabolites to Phosphorus Fertilizer Management in Dryland Farmland[D]. Yangling: Northwest A&F University, 2022.
[28] ZHU Lingyue, WANG Jiachen, WENG Yilin, et al. Soil characteristics of Eucalyptus urophylla×Eucalyptus grandis plantations under different management measures for harvest residues with soil depth gradient across time[J/OL]. Ecological Indicators, 2020, 117(5): 106530[2024-12-06]. DOI: 10.1016/j.ecolind.2020.106530.