Limbach LK, Li Y, Grass RN, Brunner TJ, Hintermann MA, Muller M, Gunther D, Stark WJ
(2005) Oxide nanoparticle uptake in human lung fibroblasts: effects of particle size, agglomeration, and diffusion at low concentrations. Environ Sci Technol 39(23):9370–9376
Limbach LK, Bereiter R, Mã Ller E, Krebs R, Galli R, Stark WJ (2008) Removal of oxide
nanoparticles in a model wastewater treatment plant: influence of agglomeration and surfactants
on clearing efficiency. Environ Sci Technol 42(15):5828–5833
Liu HH, Cohen Y (2015) Multimedia environmental distribution of engineered nanomaterials.
Environ Sci Technol 48(6):3281–3292
Liu HH, Surawanvijit S, Rallo R, Orkoulas G, Cohen Y (2011) Analysis of nanoparticle agglomeration in aqueous suspensions via constant-number Monte Carlo simulation. Environ Sci
Technol 45(21):9284–9292
Liu W, Rose J, Plantevin S, Auffan M, Bottero JY, Vidaud C (2013) Protein corona formation for
nanomaterials and proteins of a similar size: hard or soft corona? Nanoscale 5(4):1658–1668
Liu X, Ray JR, Neil CW, Li Q, Jun YS (2015) Enhanced colloidal stability of CeO 2 nanoparticles
by ferrous ions: adsorption, redox reaction, and surface precipitation. Environ Sci Technol 49
(9):5476–5483
Lópezmoreno ML, Rosa GD, Hernándezviezcas JÁ, Castillomichel H, Botez CE, Peraltavidea JR
et al (2010) Evidence of the differential biotransformation and genotoxicity of ZnO and CeO 2
nanoparticles on soybean (Glycine max) plants. Environ Sci Technol 44(19):7315–7320
Louie SM, Ma R, Lowry GV (2014) Transformations of nanomaterials in the environment.
Elsevier, Amsterdam
Lu M, Zhang Y, Wang Y, Jiang M, Yao X (2016) Insight into several factors that affect the
conversion between antioxidant and oxidant activities of nanoceria. ACS Appl Mater Interfaces
8(36):23580–23590
Ludwig K, Limbach YL, Robert N, Grass TJ, Brunner MA, Hintermann MM et al (2005) Oxide
nanoparticle uptake in human lung fibroblasts: effects of particle size, agglomeration, and
diffusion at low concentrations. Environ Sci Technol 39(23):9370–9376
Ma Y, Zhang P, Zhang Z, He X, Zhang J, Ding Y et al (2015) Where does the transformation of
precipitated ceria nanoparticles in hydroponic plants take place? Environ Sci Technol 49
(17):10667–10674
Ma X, Wang Q, Rossi L, Zhang W (2016) Cerium oxide nanoparticles and bulk cerium oxide
leading to different physiological and biochemical responses in Brassica rapa. Environ Sci
Technol 50(13):6793–6802
Ma Y, He X, Zhang P, Zhang Z, Ding Y, Zhang J et al (2017) Xylem and phloem based transport of
CeO 2 nanoparticles in hydroponic cucumber plants. Environ Sci Technol 51(9):5215
Ma Y, Yao Y, Yang J, He X, Ding Y, Zhang P et al (2018) Trophic transfer and transformation of
CeO 2 nanoparticles along a terrestrial food chain: influence of exposure routes. Environ Sci
Technol 52(14):7921–7927
Majumdar S, Peralta-Videa JR, Trujillo-Reyes J, Sun YP, Barrios AC, Niu GH, Flores-Margez JP,
Gardea-Torresdey JL (2016a) Soil organic matter influences cerium translocation and physiological processes in kidney bean plants exposed to cerium oxide nanoparticles. Sci Total
Environ 569–570:201–211
Majumdar S, Trujillo-Reyes J, Hernandez-Viezcas JA, White JC, Peralta-Videa JR, GardeaTorresdey JL (2016b) Cerium biomagnification in a terrestrial food chain: influence of particle
size and growth stage. Environ Sci Technol 50(13):6782–6792
Marie T, Mélanie A, Lenka B, Julien I, Isabelle K, Christine P et al (2014) Transfer, transformation,
and impacts of ceria nanomaterials in aquatic mesocosms simulating a pond ecosystem. Environ
Sci Technol 48(16):9004–9013
Merrifield RC, Wang ZW, Palmer RE, Lead JR (2013) Synthesis and characterization of
polyvinylpyrrolidone coated cerium oxide nanoparticles. Environ Sci Technol 47
(21):12426–12433
Merrifield RC, Arkill KP, Palmer RE, Lead JR (2017) A high resolution study of dynamic changes
of Ce 2 O 3 and CeO 2 nanoparticles in complex environmental media. Environ Sci Technol 51
(14):8010–8016
202
G. You et al.
(2005) Oxide nanoparticle uptake in human lung fibroblasts: effects of particle size, agglomeration, and diffusion at low concentrations. Environ Sci Technol 39(23):9370–9376
Limbach LK, Bereiter R, Mã Ller E, Krebs R, Galli R, Stark WJ (2008) Removal of oxide
nanoparticles in a model wastewater treatment plant: influence of agglomeration and surfactants
on clearing efficiency. Environ Sci Technol 42(15):5828–5833
Liu HH, Cohen Y (2015) Multimedia environmental distribution of engineered nanomaterials.
Environ Sci Technol 48(6):3281–3292
Liu HH, Surawanvijit S, Rallo R, Orkoulas G, Cohen Y (2011) Analysis of nanoparticle agglomeration in aqueous suspensions via constant-number Monte Carlo simulation. Environ Sci
Technol 45(21):9284–9292
Liu W, Rose J, Plantevin S, Auffan M, Bottero JY, Vidaud C (2013) Protein corona formation for
nanomaterials and proteins of a similar size: hard or soft corona? Nanoscale 5(4):1658–1668
Liu X, Ray JR, Neil CW, Li Q, Jun YS (2015) Enhanced colloidal stability of CeO 2 nanoparticles
by ferrous ions: adsorption, redox reaction, and surface precipitation. Environ Sci Technol 49
(9):5476–5483
Lópezmoreno ML, Rosa GD, Hernándezviezcas JÁ, Castillomichel H, Botez CE, Peraltavidea JR
et al (2010) Evidence of the differential biotransformation and genotoxicity of ZnO and CeO 2
nanoparticles on soybean (Glycine max) plants. Environ Sci Technol 44(19):7315–7320
Louie SM, Ma R, Lowry GV (2014) Transformations of nanomaterials in the environment.
Elsevier, Amsterdam
Lu M, Zhang Y, Wang Y, Jiang M, Yao X (2016) Insight into several factors that affect the
conversion between antioxidant and oxidant activities of nanoceria. ACS Appl Mater Interfaces
8(36):23580–23590
Ludwig K, Limbach YL, Robert N, Grass TJ, Brunner MA, Hintermann MM et al (2005) Oxide
nanoparticle uptake in human lung fibroblasts: effects of particle size, agglomeration, and
diffusion at low concentrations. Environ Sci Technol 39(23):9370–9376
Ma Y, Zhang P, Zhang Z, He X, Zhang J, Ding Y et al (2015) Where does the transformation of
precipitated ceria nanoparticles in hydroponic plants take place? Environ Sci Technol 49
(17):10667–10674
Ma X, Wang Q, Rossi L, Zhang W (2016) Cerium oxide nanoparticles and bulk cerium oxide
leading to different physiological and biochemical responses in Brassica rapa. Environ Sci
Technol 50(13):6793–6802
Ma Y, He X, Zhang P, Zhang Z, Ding Y, Zhang J et al (2017) Xylem and phloem based transport of
CeO 2 nanoparticles in hydroponic cucumber plants. Environ Sci Technol 51(9):5215
Ma Y, Yao Y, Yang J, He X, Ding Y, Zhang P et al (2018) Trophic transfer and transformation of
CeO 2 nanoparticles along a terrestrial food chain: influence of exposure routes. Environ Sci
Technol 52(14):7921–7927
Majumdar S, Peralta-Videa JR, Trujillo-Reyes J, Sun YP, Barrios AC, Niu GH, Flores-Margez JP,
Gardea-Torresdey JL (2016a) Soil organic matter influences cerium translocation and physiological processes in kidney bean plants exposed to cerium oxide nanoparticles. Sci Total
Environ 569–570:201–211
Majumdar S, Trujillo-Reyes J, Hernandez-Viezcas JA, White JC, Peralta-Videa JR, GardeaTorresdey JL (2016b) Cerium biomagnification in a terrestrial food chain: influence of particle
size and growth stage. Environ Sci Technol 50(13):6782–6792
Marie T, Mélanie A, Lenka B, Julien I, Isabelle K, Christine P et al (2014) Transfer, transformation,
and impacts of ceria nanomaterials in aquatic mesocosms simulating a pond ecosystem. Environ
Sci Technol 48(16):9004–9013
Merrifield RC, Wang ZW, Palmer RE, Lead JR (2013) Synthesis and characterization of
polyvinylpyrrolidone coated cerium oxide nanoparticles. Environ Sci Technol 47
(21):12426–12433
Merrifield RC, Arkill KP, Palmer RE, Lead JR (2017) A high resolution study of dynamic changes
of Ce 2 O 3 and CeO 2 nanoparticles in complex environmental media. Environ Sci Technol 51
(14):8010–8016
202
G. You et al.
