The Experts below are selected from a list of 23931 Experts worldwide ranked by ideXlab platform
Guibin Jiang - One of the best experts on this subject based on the ideXlab platform.
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ultrasensitive determination of tetrabromobisphenol a by covalent organic framework based solid phase microextraction coupled with constant flow desorption ionization mass spectrometry
Analytical Chemistry, 2019Co-Authors: Yong Tian, Yongliang Yu, Zongshan Zhao, Guibin JiangAbstract:Rapid detection of ultratrace pollutants in complex matrixes is a great challenge for studying their environmental behaviors and impacts. In this work, a method is developed by combining covalent organic framework (COF) based solid phase microextraction (SPME) with constant flow desorption ionization mass spectrometry for rapid detection of trace tetrabromobisphenol A (TBBPA) in multiple water media. The limits of detection and qualification are 0.92 and 3.1 ng L–1 for TBBPA, respectively. The linear range is between 0.01 and 10 μg L–1 (R2 = 0.9992), and the relative standard deviations with single fiber and multiple fibers are 6.4% and 6.7% (0.1 μg L–1, n = 9), respectively. The detection of nanogram per liter levels of TBBPA in tap water, river water, seawater, and Beverage Can be achieved in 7 min.
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Ultrasensitive Determination of Tetrabromobisphenol A by Covalent Organic Framework Based Solid Phase Microextraction Coupled with Constant Flow Desorption Ionization Mass Spectrometry
2018Co-Authors: Wei Gao, Yong Tian, Zongshan Zhao, Yaqi Cai, Aifeng Liu, Huan Liu, Guibin JiangAbstract:Rapid detection of ultratrace pollutants in complex matrixes is a great challenge for studying their environmental behaviors and impacts. In this work, a method is developed by combining covalent organic framework (COF) based solid phase microextraction (SPME) with constant flow desorption ionization mass spectrometry for rapid detection of trace tetrabromobisphenol A (TBBPA) in multiple water media. The limits of detection and qualification are 0.92 and 3.1 ng L–1 for TBBPA, respectively. The linear range is between 0.01 and 10 μg L–1 (R2 = 0.9992), and the relative standard deviations with single fiber and multiple fibers are 6.4% and 6.7% (0.1 μg L–1, n = 9), respectively. The detection of nanogram per liter levels of TBBPA in tap water, river water, seawater, and Beverage Can be achieved in 7 min
Yong Tian - One of the best experts on this subject based on the ideXlab platform.
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ultrasensitive determination of tetrabromobisphenol a by covalent organic framework based solid phase microextraction coupled with constant flow desorption ionization mass spectrometry
Analytical Chemistry, 2019Co-Authors: Yong Tian, Yongliang Yu, Zongshan Zhao, Guibin JiangAbstract:Rapid detection of ultratrace pollutants in complex matrixes is a great challenge for studying their environmental behaviors and impacts. In this work, a method is developed by combining covalent organic framework (COF) based solid phase microextraction (SPME) with constant flow desorption ionization mass spectrometry for rapid detection of trace tetrabromobisphenol A (TBBPA) in multiple water media. The limits of detection and qualification are 0.92 and 3.1 ng L–1 for TBBPA, respectively. The linear range is between 0.01 and 10 μg L–1 (R2 = 0.9992), and the relative standard deviations with single fiber and multiple fibers are 6.4% and 6.7% (0.1 μg L–1, n = 9), respectively. The detection of nanogram per liter levels of TBBPA in tap water, river water, seawater, and Beverage Can be achieved in 7 min.
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Ultrasensitive Determination of Tetrabromobisphenol A by Covalent Organic Framework Based Solid Phase Microextraction Coupled with Constant Flow Desorption Ionization Mass Spectrometry
2018Co-Authors: Wei Gao, Yong Tian, Zongshan Zhao, Yaqi Cai, Aifeng Liu, Huan Liu, Guibin JiangAbstract:Rapid detection of ultratrace pollutants in complex matrixes is a great challenge for studying their environmental behaviors and impacts. In this work, a method is developed by combining covalent organic framework (COF) based solid phase microextraction (SPME) with constant flow desorption ionization mass spectrometry for rapid detection of trace tetrabromobisphenol A (TBBPA) in multiple water media. The limits of detection and qualification are 0.92 and 3.1 ng L–1 for TBBPA, respectively. The linear range is between 0.01 and 10 μg L–1 (R2 = 0.9992), and the relative standard deviations with single fiber and multiple fibers are 6.4% and 6.7% (0.1 μg L–1, n = 9), respectively. The detection of nanogram per liter levels of TBBPA in tap water, river water, seawater, and Beverage Can be achieved in 7 min
Zongshan Zhao - One of the best experts on this subject based on the ideXlab platform.
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ultrasensitive determination of tetrabromobisphenol a by covalent organic framework based solid phase microextraction coupled with constant flow desorption ionization mass spectrometry
Analytical Chemistry, 2019Co-Authors: Yong Tian, Yongliang Yu, Zongshan Zhao, Guibin JiangAbstract:Rapid detection of ultratrace pollutants in complex matrixes is a great challenge for studying their environmental behaviors and impacts. In this work, a method is developed by combining covalent organic framework (COF) based solid phase microextraction (SPME) with constant flow desorption ionization mass spectrometry for rapid detection of trace tetrabromobisphenol A (TBBPA) in multiple water media. The limits of detection and qualification are 0.92 and 3.1 ng L–1 for TBBPA, respectively. The linear range is between 0.01 and 10 μg L–1 (R2 = 0.9992), and the relative standard deviations with single fiber and multiple fibers are 6.4% and 6.7% (0.1 μg L–1, n = 9), respectively. The detection of nanogram per liter levels of TBBPA in tap water, river water, seawater, and Beverage Can be achieved in 7 min.
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Ultrasensitive Determination of Tetrabromobisphenol A by Covalent Organic Framework Based Solid Phase Microextraction Coupled with Constant Flow Desorption Ionization Mass Spectrometry
2018Co-Authors: Wei Gao, Yong Tian, Zongshan Zhao, Yaqi Cai, Aifeng Liu, Huan Liu, Guibin JiangAbstract:Rapid detection of ultratrace pollutants in complex matrixes is a great challenge for studying their environmental behaviors and impacts. In this work, a method is developed by combining covalent organic framework (COF) based solid phase microextraction (SPME) with constant flow desorption ionization mass spectrometry for rapid detection of trace tetrabromobisphenol A (TBBPA) in multiple water media. The limits of detection and qualification are 0.92 and 3.1 ng L–1 for TBBPA, respectively. The linear range is between 0.01 and 10 μg L–1 (R2 = 0.9992), and the relative standard deviations with single fiber and multiple fibers are 6.4% and 6.7% (0.1 μg L–1, n = 9), respectively. The detection of nanogram per liter levels of TBBPA in tap water, river water, seawater, and Beverage Can be achieved in 7 min
Yongliang Yu - One of the best experts on this subject based on the ideXlab platform.
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ultrasensitive determination of tetrabromobisphenol a by covalent organic framework based solid phase microextraction coupled with constant flow desorption ionization mass spectrometry
Analytical Chemistry, 2019Co-Authors: Yong Tian, Yongliang Yu, Zongshan Zhao, Guibin JiangAbstract:Rapid detection of ultratrace pollutants in complex matrixes is a great challenge for studying their environmental behaviors and impacts. In this work, a method is developed by combining covalent organic framework (COF) based solid phase microextraction (SPME) with constant flow desorption ionization mass spectrometry for rapid detection of trace tetrabromobisphenol A (TBBPA) in multiple water media. The limits of detection and qualification are 0.92 and 3.1 ng L–1 for TBBPA, respectively. The linear range is between 0.01 and 10 μg L–1 (R2 = 0.9992), and the relative standard deviations with single fiber and multiple fibers are 6.4% and 6.7% (0.1 μg L–1, n = 9), respectively. The detection of nanogram per liter levels of TBBPA in tap water, river water, seawater, and Beverage Can be achieved in 7 min.
P G De Heij - One of the best experts on this subject based on the ideXlab platform.
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recovery and distribution of incinerated aluminum packaging waste
Waste Management, 2011Co-Authors: Y. Hu, Maarten Bakker, P G De HeijAbstract:Abstract A study was performed into relations between physical properties of aluminum packaging waste and the corresponding aluminum scraps in bottom ash from three typical incineration processes. First, Dutch municipal solid waste incineration (MSWI) bottom ash was analyzed for the identifiable Beverage Can alloy scraps in the +2 mm size ranges using chemical detection and X-ray fluorescence. Second, laboratory-scale pot furnace tests were conducted to investigate the relations between aluminum packaging in base household waste and the corresponding metal recovery rates. The representative packaging wastes include Beverage Cans, foil containers and thin foils. Third, small samples of aluminum packaging waste were incinerated in a high-temperature oven to determine leading factors influencing metal recovery rates. Packaging properties, combustion conditions, presence of magnesium and some specific contaminants commonly found in household waste were investigated independently in the high-temperature oven. In 2007, the bottom ash (+2 mm fraction) from the AEB MSWI plant was estimated to be enriched by 0.1 wt.% of aluminum Beverage Cans scrap. Extrapolating from this number, the recovery potential of all eleven MSWI plants in the Netherlands is estimated at 720 ton of aluminum Cans scrap. More than 85 wt.% of this estimate would end up in +6 mm size fractions and were amenable for efficient recycling. The pot furnace tests showed that the average recovery rate of metallic aluminum typically decreases from Beverage Cans (93 wt.%) to foil containers (85 wt.%) to thin foils (77 wt.%). The oven tests showed that in order of decreasing impact the main factors promoting metallic aluminum losses are the packaging type, combustion temperature, residence time and salt contamination. To a lesser degree magnesium as alloying element, smaller packaging size and basic contaminations may also promote losses.