[1] Nowack B, Bucheli T D. Occurrence, behavior and effects of nanoparticles in the environment[J]. Environmental Pollution, 2007, 150:5-22.
[2] Weinberg H, Galyean A, Leopold M. Evaluating engineered nanoparticles in natural waters[J]. Trends in Analytical Chemistry, 2011, 30:72-83.
[3] Bozich J S, Lohse E, Torelli M D, et al. Surface chemistry, charge and ligand type impact the toxicity of gold nanoparticles to Daphnia magna[J]. Environmental Science:Nano, 2014, 1:260-270.
[4] Skjolding L M, Hjorth R, Hartmann N, et al. Uptake and depuration of gold nanoparticles in Daphnia magna[J]. Ecotoxicology, 2014, 23:1172-1183.
[5] Garcia-Cambero J P, Nunez Garcia M, Lopez G D, et al. Converging hazard assessment of gold nanoparticles to aquatic organisms[J]. Chemosphere, 2013, 9:1194-1200.
[6] Lapresta-Fernandez A, Fernandez A, Blasco J. Nanoecotoxicity effects of engineered silver and gold nanoparticles in aquatic organisms[J]. Trends in Analytical Chemistry, 2012, 32:40-59.
[7] Al-Reasi H A, Wood C M, Smith D S. Physicochemical and spectroscopic properties of natural organic matter from various sources and implications for ameliorative effects on metal toxicity to aquatic biota[J]. Aquatic Toxicology, 2011, 103:179-190.
[8] Elbishlawi H, Jaffe P R. Characterization of dissolved organic matter from a restored urban marsh and its role in the mobilization of trace metals[J]. Chemosphere, 2015, 127:144-151.
[9] Yin Y, Liu J, Jiang G. Sunlight-induced reduction of ionic Ag and Au to metallic nanoparticles by dissolved organic matter[J]. ACS Nano, 2012, 6:7910-7919.
[10] Yin Y, Yu S, Liu J, et al. Thermal and photoinduced reduction of ionic Au(III) to elemental au nanoparticles by dissolved organic matter in water:possible source of naturally occurring au nanoparticles[J]. Environmental Science and Technology, 2014, 48:2671-2679.
[11] Gao J, Powers K, Wang Y, et al. Influence of Suwannee River humic acid on particle properties and toxicity of silver nanoparticles[J]. Chemosphere, 2012, 89:96-101.
[12] Delay M, Dolt T, Woellhaf A, et al. Interactions and stability of silver nanoparticles in the aqueous phase:influence of natural organic matter (NOM) and ionic strength[J]. Journal of Chromatography A, 2011, 1218:4206-4212.
[13] Bowell R J, Foster R P. The mobility of gold in tropical rain forest soils[J]. Economic Geology, 1993, 88:999-1016.
[14] Reith F, Lengke M F, Falconer D, et al. The geomicrobiology of gold[J]. ISME Journal, 2007, 1:567-584.
[15] Williams-Jones A E, Bowell R J, Migdisov A. Gold in solution[J]. Elements, 2009, 5(5):281-287.
[16] Usher A, McPhail DC, Brugger J. A spectrophotometric study of aqueous Au(III) halide-hydroxide complexes at 25-80℃[J]. Geochimica et Cosmochimica Acta, 2009, 73(11):3359-3380.
[17] Ta C, Reith F, Brugger J, et al. Analysis of gold(I/III)-complexes by HPLC-ICP-MS demonstrates gold(III) stability in surface waters[J]. Environmental Science and Technology, 2014, 48:5737-5744.
[18] Adegboyega N F, Sharma V K, Siskova K, et al. Interactions of aqueous Ag+ with fulvic acids:mechanisms of silver nanoparticle formation and investigation of stability[J]. Environmental Science and Technoloy, 2013, 47:757-764.
[19] Hou W C, Stuart B, Howes R, et al. Sunlight-driven reduction of silver ions by natural organic matter:formation and transformation of silver nanoparticles[J]. Environmental Science and Technoloy, 2013, 47:7713-7721.
[20] Yin Y, Shen M, Zhou X, et al. Photoreduction and stabilization capability of molecular weight fractionated natural organic matter in transformation of silver ion to metallic nanoparticle[J]. Environmental Science and Technoloy, 2014, 48:9366-9373.
[21] Pham A N, Rose A L, Waite T D. Kinetics of Cu(II) reduction by natural organic matter[J]. The Journal of Physical Chemistry A, 2012, 116(25):6590-6599. |