Results 31 to 40 of about 6,918 (217)
The translocation of iodine (I) from soil to food chain is largely determined by its adsorption/desorption reaction in soils. In this study, the effects of commercial humates (HA) applied on an Aridisol and indigenous soil organic matter (SOM) on the ...
Muhittin Onur Akça +3 more
doaj +1 more source
HYPERTHYROIDISM AND IODIDES [PDF]
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openaire +2 more sources
Potentiometric Sensors for Iodide and Bromide Based on Pt(II)-Porphyrin
Pt(II) 5,10,15,20-tetra(4-methoxy-phenyl)-porphyrin (PtTMeOPP) was used in the construction of new ion-selective sensors. The potentiometric response characteristics (slope and selectivity) of iodide and bromide-selective electrodes based on (PtTMeOPP ...
Dana Vlascici +7 more
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Discussion on the Analysis Method of Iodide in Natural Water Samples
BACKGROUNDAs the main source of iodine intake, water is of practical significance to detect the content of iodide accurately. At present, the common methods for the analysis of iodide in water samples include ion chromatography, gas chromatography ...
Xinyi SONG +6 more
doaj +1 more source
A new PVC membrane sensor for iodide has been investigated. The PVC sensor is composed of cetylpyridinium (CP) -tetraiodomercurate (HgI4-2) as counter ion in a plasticizer solvent.
Atef M.A. Homoda +2 more
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Surface Inorganic Iodine Speciation in the Indian and Southern Oceans From 12°N to 70°S
Marine iodine speciation has emerged as a potential tracer of primary productivity, sedimentary inputs, and ocean oxygenation. The reaction of iodide with ozone at the sea surface has also been identified as the largest deposition sink for tropospheric ...
Rosie Chance +11 more
doaj +1 more source
The one of the most important issues in constructing light-harvesting photovoltaic (PV) systems with a charge storage element is its reliable and uninterrupted use in highly variable and weather-dependent conditions in everyday applications.
Magdalena Skunik-Nuckowska +8 more
doaj +1 more source
Enhanced High-Rate Capability of Iodide-Doped Li4Ti5O12 as an Anode for Lithium-Ion Batteries
Li4Ti5O12 (LTO) is an alternative anode material to substitute commercial graphite for lithium-ion batteries due to its superior long cycle life, small volume change (zero strain), good thermal stability, and relatively high power.
Lukman Noerochim +5 more
doaj +1 more source

