[1] XU Z S, CHAI X L. Effect of weight ratios of PHBV/PLA polymer blends on nitrate removal efficiency and microbial community during solid-phase denitrification[J]. International Biodeterioration & Biodegradation, 2017, 116: 175-183.
[2] JIANG L, WU A Q, FANG D X, et al. Denitrification performance and microbial diversity using starch-polycaprolactone blends as external solid carbon source and biofilm carriers for advanced treatment[J]. Cheosphere, 2020, 255: 126901. doi: 10.1016/j.chemosphere.2020.126901
[3] 芦婷, 杨璐华, 杨飞飞, 等. 高效反硝化菌强化固相碳源生物脱氮特性研究[J]. 北京大学学报(自然科学版), 2017, 53(5): 957-963. doi: 10.13209/j.0479-8023.2017.114
[4] 陕洁, 牟芬, 王新芳, 等. 可生物降解塑料的合成及其改性[J]. 聚酯工业, 2021, 34(3): 23-26. doi: 10.3969/j.issn.1008-8261.2021.03.006
[5] 李静, 刘景江. 聚(β-羟基丁酸酯)和β-羟基丁酸酯-β-羟基戊酸酯共聚物与可生物降解高分子共混改性研究进展[J]. 高分子通报, 2003(6): 33-43. doi: 10.3969/j.issn.1003-3726.2003.06.006
[6] 林世东, 杜国强, 顾君, 等. 我国生物基及可降解塑料发展研究[J]. 塑料工业, 2021, 49(3): 10-12+37. doi: 10.3969/j.issn.1005-5770.2021.03.002
[7] PANG X, ZHUANG X L, TANG Z H, et al. Polylactic acid (PLA): research, development and industrialization[J]. Biotechnology Journal, 2010, 5(11): 1125-1136. doi: 10.1002/biot.201000135
[8] FAN Z X, HU J, WANG J L. Biological nitrate removal using wheat straw and PLA as substrate[J]. Environmental Technology, 2012, 33(21): 2369-2374. doi: 10.1080/09593330.2012.669411
[9] 彭书林, 赵丹. 进水pH值对PLA反硝化系统的影响[J]. 塑料工业, 2021, 49(10): 158-162. doi: 10.3969/j.issn.1005-5770.2021.10.033
[10] TAKAHASHI M, YAMADA T, TANNO M, et al. Nitrate removal efficiency and bacterial community dynamics in denitrification processes using poly (l-lactic acid) as the solid substrate[J]. Microbes and Environments, 2011, 26(3): 212-219. doi: 10.1264/jsme2.ME11107
[11] 许明奕, 逄宇帆, 刑涛等. 聚乳酸合成方法的研究进展及市场分析[J]. 应用化工, 2022, 51(12): 3614-3618+3624. doi: 10.3969/j.issn.1671-3206.2022.12.038
[12] 夏璐, 黄鹏, 刘丹丹等. 磷钨杂多酸直接法催化合成聚乳酸[J]. 当代化工, 2010, 39(06): 628-631. doi: 10.3969/j.issn.1671-0460.2010.06.005
[13] 刘斌基. 聚乳酸的合成过程的影响因素[J]. 新疆有色金属, 2015, 38(06): 49-51. doi: 10.16206/j.cnki.65-1136/tg.2015.06.018
[14] 杨惠兰, 张丹, 兰书焕, 等. 聚己内酯复合固体碳源的制备及其深度脱氮性能研究[J]. 环境科学学报, 2022, 42(05): 263-273. doi: 10.13671/j.hjkxxb.2021.0415
[15] GAO L J, HAN F, ZHANG X W, et al. Simultaneous nitrate and dissolved organic matter removal from wastewater treatment plant effluent in a solid-phase denitrification biofilm reactor[J]. Bioresource Technology, 2020, 314: 123714. doi: 10.1016/j.biortech.2020.123714
[16] 姚璐璐, 涂响, 于会彬等. 三维荧光区域积分评估城市污水中溶解性有机物去除[J]. 环境工程学报, 2013, 7(02): 411-416.
[17] 陈思. 生物脱氮固体碳源筛选及初步脱氮效果[D]. 重庆: 重庆大学, 2013.
[18] 汪鲁, 刘军, 李永富, 等. 基于固态碳源的同步硝化反硝化反应器对海水养殖废水中氮的去除性能[J]. 环境工程学报, 2022, 16(6): 2001-2009. doi: 10.12030/j.cjee.202112196
[19] YANG M, WANG X N, LIU S, et al. Carbon release behaviour of polylactic acid/starch-based solid carbon and its influence on biodenitrification[J]. Biochemical Engineering Journal, 2020, 155.
[20] 王玥, 秦帆, 唐燕华, 等. 农业废弃物作为反硝化脱氮外加碳源的研究[J]. 林业工程学报, 2019, 4(5): 146-151.
[21] 孙策, 吕闪闪, 张化腾等. 聚乳酸及其复合材料降解的研究进展[J]. 塑料, 2018, 47(6): 114-117.
[22] 任永琳, 王达, 刘合等. 聚乳酸水解机理及水解性能改进方法研究进展[J]. 石油化工, 2022, 51(09): 1129-1136. doi: 10.3969/j.issn.1000-8144.2022.09.018
[23] 焦旗, 田广华, 杨坚, 等. 聚丙烯结晶性能研究[J]. 工程塑料应用, 2015, 43(7): 109-113. doi: 10.3969/j.issn.1001-3539.2015.07.024
[24] 樊新, 陈剑, 阮建明, 等. 聚乳酸类生物可降解材料研究进展[J]. 粉末冶金材料科学与工程, 2008(4): 187-194. doi: 10.3969/j.issn.1673-0224.2008.04.001
[25] 梁捷, 缪恒锋, 任洪艳, 等. 以聚己内酯作为生物反硝化固体碳源的研究[J]. 环境工程学报, 2015, 9(2): 633-638. doi: 10.12030/j.cjee.20150221
[26] SHEN Z Q, ZHOU Y X, WANG J L. Comparison of denitrification performance and microbial diversity using starch/polylactic acid blends and ethanol as electron donor for nitrate removal[J]. Bioresource Technology, 2013, 131: 33-39. doi: 10.1016/j.biortech.2012.12.169
[27] VAN DEN BERG E M, BOLEIJ M, KUENEN J G, et al. DNRA and denitrification coexist over a broad range of acetate/N-NO(3)(-) ratios, in a chemostat enrichment culture[J]. Frontiers in Microbiology, 2016, 7: 1842.
[28] HU R T, ZHENG X L, ZHENG T Y, et al. Effects of carbon availability in a woody carbon source on its nitrate removal behavior in solid-phase denitrification[J]. Journal of Environmental Management, 2019, 246: 832-839.
[29] YANG Z C, SUN H M, ZHOU Q, et al. Nitrogen removal performance in pilot-scale solid-phase denitrification systems using novel biodegradable blends for treatment of waste water treatment plants effluent[J]. Bioresource Technology, 2020, 305: 122994. doi: 10.1016/j.biortech.2020.122994
[30] LI J, TABASSUM S. Remediation of nitrate-contaminated groundwater by a combined treatment method of novel Mass Bio System and solid organic carbon sources: In-depth study[J]. Cleaner Engineering and Technology, 2021, 4.
[31] WU L N, ZHANG L Y, XU Y Y, et al. Advanced nitrogen removal using bio-refractory organics as carbon source for biological treatment of landfill leachate[J]. Separation and Purification Technology, 2016, 170: 306-313. doi: 10.1016/j.seppur.2016.06.033
[32] 万鹏亮, 刘玉玲, 朱妮平, 等. A2O工艺处理城市污水过程中DOM组分变化分析[J]. 西安建筑科技大学学报(自然科学版), 2021, 53(5): 765-772. doi: 10.15986/j.1006-7930.2021.05.020
[33] CHEN D, WANG H Y, YANG K, et al. Performance and microbial communities in a combined bioelectrochemical and sulfur autotrophic denitrification system at low temperature[J]. Chemosphere, 2018, 193: 337-342. doi: 10.1016/j.chemosphere.2017.11.017
[34] ZHAO J M, FENG C P, TONG S, et al. Denitrification behavior and microbial community spatial distribution inside woodchip-based solid-phase denitrification (W-SPD) bioreactor for nitrate-contaminated water treatment[J]. Bioresource Technology, 2018, 249: 869-879. doi: 10.1016/j.biortech.2017.11.011
[35] MIURA Y, WATANABE Y, OKABE S, et al. Significance of Chloroflexi in performance of submerged membrane bioreactors (MBR) treating municipal wastewater[J]. Environmental Science & Technology, 2007, 41: 7787-7794.
[36] FUJII N, KURODA K, NARIHIRO T, et al. Metabolic potential of the superphylum Patescibacteria reconstructed from activated sludge samples from a municipal wastewater treatment plant[J]. Microbes and Environments, 2022, 37 (3).
[37] YE L, SHAO M F, ZHANG T, et al. Analysis of the bacterial community in a laboratory-scale nitrification reactor and a wastewater treatment plant by 454-pyrosequencing[J]. Water Research, 2011, 45(15): 4390-4398. doi: 10.1016/j.watres.2011.05.028
[38] VETROVSKY T, STEFFEN K T, BALDRIAN P. Potential of cometabolic transformation of polysaccharides and lignin in lignocellulose by soil Actinobacteria[J]. PLoS One, 2014, 9(2): 89108. doi: 10.1371/journal.pone.0089108
[39] 周星煜, 张金松. 活性污泥反硝化速率与功能基因活性关联分析[J/OL]. 给水排水: 1-7 2-11-24].
[40] KRISTENSEN J M, SINGLETON C, CLEGG L A, et al. High diversity and functional potential of undescribed "Acidobacteriota" in Danish wastewater treatment plants[J]. Frontiers in Microbiology, 2021, 12: 643950. doi: 10.3389/fmicb.2021.643950
[41] 肖晶晶, 郭萍, 霍炜洁, 等. 反硝化微生物在污水脱氮中的研究及应用进展[J]. 环境科学与技术, 2009, 32(12): 97-102. doi: 10.3969/j.issn.1003-6504.2009.12.022
[42] CAO J S, ZHANG T, WU Y, et al. Correlations of nitrogen removal and core functional genera in full-scale wastewater treatment plants: influences of different treatment processes and influent characteristics[J]. Bioresource Technology, 2020, 297: 122455. doi: 10.1016/j.biortech.2019.122455
[43] RISSANEN A J, OJALA A, FRED T, et al. Methylophilaceae and Hyphomicrobium as target taxonomic groups in monitoring the function of methanol-fed denitrification biofilters in municipal wastewater treatment plants[J]. J Ind Microbiol Biotechnol, 2017, 44(1): 35-47. doi: 10.1007/s10295-016-1860-5
[44] WANG Z Y, ZHENG M, MENG J, et al. Robust nitritation sustained by acid-tolerant ammonia-oxidizing bacteria[J]. Environmental Science & Technology, 2021, 55(3): 2048-2056.
[45] KONDROTAITE Z, VALK L C, PETRIGLIERI F, et al. Diversity and ecophysiology of the genus OLB8 and other abundant uncultured Saprospiraceae genera in global wastewater treatment systems[J]. Frontiers in Microbiology, 2022, 13: 917553. doi: 10.3389/fmicb.2022.917553
[46] ZHANG S Q, KONG Z, WANG H, et al. Enhanced nitrate removal by biochar supported nano zero-valent iron (nZVI) at biocathode in bioelectrochemical system (BES)[J]. Chemical Engineering Journal, 2022, 433.
[47] SUN H M, ZHOU Q, ZHAO L, et al. Enhanced simultaneous removal of nitrate and phosphate using novel solid carbon source/zero-valent iron composite[J]. Journal of Cleaner Production, 2021, 289.
[48] 张鹏程, 李晓玲, 王晓婷等. 活性污泥体系中C/N/S对硝酸盐还原过程的影响[J]. 中国环境科学, 2021, 41(5): 2117-2122. doi: 10.3969/j.issn.1000-6923.2021.05.015
[49] MARTINEAU C, MAUFFREY F, VILLEMUR R. Comparative analysis of denitrifying activities of Hyphomicrobium nitrativorans, Hyphomicrobium denitrificans, and Hyphomicrobium zavarzinii[J]. Applied and Environmental Microbiology, 2015, 81(15): 5003-5014. doi: 10.1128/AEM.00848-15
[50] ZHANG Y P, DOUGLAS G B, KAKSONEN A H, et al. Microbial reduction of nitrate in the presence of zero-valent iron[J]. Science of the Total Environment, 2019, 646: 1195-1203. doi: 10.1016/j.scitotenv.2018.07.112
[51] JIA L X, ZHOU Q, LI Y, et al. Integrated treatment of suburb diffuse pollution using large-scale multistage constructed wetlands based on novel solid carbon: nutrients removal and microbial interactions[J]. Journal of Environmental Management, 2023, 326: 116709. doi: 10.1016/j.jenvman.2022.116709
[52] LEVY-BOOTH D J, NAVAS L E, FETHEROLF M M, et al. Discovery of lignin-transforming bacteria and enzymes in thermophilic environments using stable isotope probing[J]. The ISME Journal, 2022, 16(8): 1944-1956. doi: 10.1038/s41396-022-01241-8
[53] SUOMINEN S, VAN VLIET D M, SANCHEZ-ANDREA I, et al. Organic matter type defines the composition of active microbial communities originating from anoxic baltic sea sediments[J]. Frontiers in Microbiology, 2021, 12: 628301. doi: 10.3389/fmicb.2021.628301
[54] ZHANG L, HAO S W, WANG Y P, et al. Rapid start-up strategy of partial denitrification and microbially driven mechanism of nitrite accumulation mediated by dissolved organic matter[J]. Bioresource Technology, 2021, 340: 125663. doi: 10.1016/j.biortech.2021.125663
[55] HUANG X, YAO K, YU J H, et al. Nitrogen removal performance and microbial characteristics during simultaneous chemical phosphorus removal process using Fe3+[J]. Bioresource Technology, 2022, 363: 127972. doi: 10.1016/j.biortech.2022.127972
[56] YIN Y N, HU Y M, WANG J L. Co-fermentation of sewage sludge and lignocellulosic biomass for production of medium-chain fatty acids[J]. Bioresource Technology, 2022, 361: 127665. doi: 10.1016/j.biortech.2022.127665