2015
DOI: 10.1016/j.chemosphere.2014.02.027
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Effects of pH and phosphate on CeO2 nanoparticle dissolution

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Cited by 119 publications
(103 citation statements)
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“…It was reported that the dissolution of nanoceria is pronounce at pH<4.5. [86][87][88] At high ionic strength, the interaction between ions and nanoceria would change their surface charges and leads to their precipitation. With the dissolution or precipitation of nanoceria, their size and other parameters change, and the enzyme mimetic activities would be also altered.…”
Section: Parameters Influencing the Enzyme Mimetic Activities Of Nanomentioning
confidence: 99%
“…It was reported that the dissolution of nanoceria is pronounce at pH<4.5. [86][87][88] At high ionic strength, the interaction between ions and nanoceria would change their surface charges and leads to their precipitation. With the dissolution or precipitation of nanoceria, their size and other parameters change, and the enzyme mimetic activities would be also altered.…”
Section: Parameters Influencing the Enzyme Mimetic Activities Of Nanomentioning
confidence: 99%
“…The aquatic environment and the size of CONPs are important. pH, and phosphate ligands might play important roles in controlling the solubility of CeO 2 38. pH is one of the few factors shown to drive whether CONPs act as oxidants or antioxidants 18,19.…”
Section: Radioprotection and Radiosensitizationmentioning
confidence: 99%
“…Besides that, the electrochemical approach has been attempted for 2-NP determination because of low-cost, simple operation, fast response, sensitive and economical. Nanomaterials had been used in catalytic cracking of naphtha in order to increase the yield of ethylene and propylene [910], oxidation of CO [11], antibacterial activity study [12], improvement of electro-catalytic activity and stability of PbO 2 electrode [13], hydrogen production [14], counter electrode for dye-sensitized solar cells [15], catalyst [16], CO conversion [17], degradation of phenol [18], photocatalytic activity [19], synthesis of spherical YAG [20], catalytic reduction of NO [21], removing of CO [22], catalytic wet-oxidation of 2,4-dichlorophenol solutions [23], enhancement of quantum yield [24], interrelated functionalities of hierarchically nanostructured layers [25], oxidation of methane [26], conversion of a dimensionally mixed ternary NCs [27], waste water treatments [28], and various applications [2934]. Till to date, various nanostructure or composite materials based electrochemical chemical sensors have been established for the detection of hazardous phenolic compounds.…”
Section: Introductionmentioning
confidence: 99%