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Featured researches published by Nathawut Choengchan.


Analytical Sciences | 2016

A Simple and Rapid Method Based on Anti-aggregation of Silver Nanoparticles for Detection of Poly(diallyldimethylammonium chloride) in Tap Water

Wichaya Trisaranakul; Apiwat Chompoosor; Weerakanya Maneeprakorn; Duangjai Nacapricha; Nathawut Choengchan; Saowapak Teerasong

A simple and rapid method was developed for the detection of poly(diallyldimethylammonium chloride) (PDADMAC) using citrate-capped silver nanoparticles (AgNPs). Detection was based on anti-aggregation of AgNPs in phosphate buffer caused by PDADMAC. Due to its positive charges, PDADMAC was adsorbed onto AgNPs via electrostatic interaction with citrate, which resulted in the charges at the particle surfaces to become positive and caused repulsion among particles. Furthermore, long-chain PDADMAC provided steric hindrance. These two effects promoted the dispersion of AgNPs in the phosphate buffer. A change in the state of dispersion influenced the surface plasmon resonance (SPR) of AgNPs. Therefore, in this work, the concentration of PDADMAC was determined by monitoring changes in absorbance (at 396 nm) caused by SPR of AgNPs. Under optimal conditions, the calibration was linear over the range of 1 to 100 mg L(-1) with a detection limit of 0.7 mg L(-1). Satisfactory precision was obtained (RSD = 2.8%). This method was successfully applied to the determination of PDADMAC in tap water samples. The recoveries ranged from 86.0 - 107.5%.


Talanta | 2015

Tandem measurements of iron and creatinine by cross injection analysis with application to urine from thalassemic patients

Nathawut Choengchan; Thitirat Mantim; P. Inpota; Duangjai Nacapricha; Prapin Wilairat; Piyada Jittangprasert; W. Waiyawat; Suthat Fucharoen; P. Sirankpracha; N Phumala Morales

This work presents development of a method for the dual determination of Fe(III) and creatinine using cross injection analysis (CIA). Two CIA platforms connected in series accommodated sample and reagents plugs aspirated via y-direction channels while water was pumped through the x-direction channel toward a flow-through cell of a diode array UV-vis. detector. Iron was detected from the colorimetric reaction between Fe(II) and 2-(5-bromo-2-pyridylazo)-5-(N-propyl-N-(3-sulfopropyl)amino) aniline (5-Br-PSAA), with prior reduction of Fe(III) to Fe(II) by ascorbic acid. The Jaffes reaction was employed for the detection of creatinine. Under the optimal conditions, good linearity ranges were achieved for iron in the range 0.5 to 7 mg L(-1) and creatinine in the range 50 to 800 mg L(-1). The CIA system was applied to spot urine samples from thalassemic patients undergoing iron chelation therapy, and was successfully validated with ICP-OES and batchwise Jaffes method. Normalization of urinary iron excretion with creatinine is useful for correcting the iron concentration between urine samples due to variation of the collected urine volume.


Analytical Sciences | 2018

A “Dual-acceptor Channel” Membraneless Gas-diffusion Unit for Simultaneous Determination of Ethanol and Acetaldehyde in Liquors Using Reverse Flow Injection

Nathawut Choengchan; Bangerdsuk Poontong; Arjnarong Mathaweesansurn; Noppadol Maneerat; Shoji Motomizu; Nuanlaor Ratanawimarnwong; Duangjai Nacapricha

A new design of membraneless gas-diffusion unit with dual acceptor channels for separation, collection and simultaneous determination of two volatile analytes in liquid sample is presented. The unit is comprised of three parallel channels in a closed module. A sample is aspirated into the central channel and two kinds of reagents are introduced into the other two channels. Two analytes are isolated from the sample matrix by diffusion into head-space and absorbed into the specific reagents. Non-absorbed vapor is released by opening the programmable controlled lid. The unit was applied to liquors for measurement of ethanol and acetaldehyde using reverse flow injection. Dichromate and nitroprusside were exploited as reagents for colorimetric detection of ethanol and acetaldehyde, respectively. Good linearity ranges (r2 >0.99) with high precision (RSD <2%) and high accuracy (recovery: 90 - 105%) were achieved. The results were compared to the results by GC-FID and no significant difference was observed by paired t-test (95% confidence).


Analytical Sciences | 2018

Microfluidic Analysis with Front-Face Fluorometric Detection for the Determination of Total Inorganic Iodine in Drinking Water

Prawpan Inpota; Kamil Strzelak; Robert Koncki; Wisaroot Sripumkhai; Wutthinan Jeamsaksiri; Nuanlaor Ratanawimarnwong; Prapin Wilairat; Nathawut Choengchan; Rattikan Chantiwas; Duangjai Nacapricha

A microfluidic method with front-face fluorometric detection was developed for the determination of total inorganic iodine in drinking water. A polydimethylsiloxane (PDMS) microfluidic device was employed in conjunction with the Sandell-Kolthoff reaction, in which iodide catalyzed the redox reaction between Ce(IV) and As(III). Direct alignment of an optical fiber attached to a spectrofluorometer was used as a convenient detector for remote front-face fluorometric detection. Trace inorganic iodine (IO3- and I-) present naturally in drinking water was measured by on-line conversion of iodate to iodide for determination of total inorganic iodine. On-line conversion efficiency of iodate to iodide using the microfluidic device was investigated. Excellent conversion efficiency of 93 - 103% (%RSD = 1.6 - 11%) was obtained. Inorganic iodine concentrations in drinking water samples were measured, and the results obtained were in good agreement with those obtained by an ICP-MS method. Spiked sample recoveries were in the range of 86%(±5) - 128%(±8) (n = 12). Interference of various anions and cations were investigated with tolerance limit concentrations ranging from 10-6 to 2.5 M depending on the type of ions. The developed method is simple and convenient, and it is a green method for iodine analysis, as it greatly reduces the amount of toxic reagent consumed with reagent volumes in the microfluidic scale.


International Journal of Environmental Analytical Chemistry | 2016

Chemometrics-assisted cross injection analysis for simultaneous determination of phosphate and silicate

Kanchana Uraisin; Supavita Janya; Chutima Phechkrajang; Nathawut Choengchan; Warawut Tiyapongpattana; Víctor Cerdà; Duangjai Nacapricha

ABSTRACT This work presents a novel method for simultaneous spectrophotometric determination of phosphate and silicate by using a cross injection analysis (CIA) coupled with the use of partial least squares (PLS) for data evaluation. The detection principle is based on the well-known ‘molybdenum blue’ method. The molybdate ions in the presence of stannous chloride in acidic medium give phosphomolybdenum blue and silicomolybdenum blue as products. In this work, all the liquids, including sample and reagents were simultaneously introduced into a CIA platform by using two peristaltic pumps for controlling the x-channel and y-channel flow which was automatically manipulated by using in-house control board. Crossflow provides sufficient mixing inside the platform prior detection of the absorption spectra of blue complexes in the wavelength of 400–900 nm. Since spectra of the blue colour product of phosphate and silicate are resemblant, these two analytes therefore reciprocally interfere with one another. This results in difficulty in simultaneous analysis of phosphate and silicate. In this work, PLS was utilised as assistor of CIA system for simultaneous analysis of phosphate and silicate using molybdenum blue reaction without using any modification of reagents and addition of selective masking agent. The calibration ranges are 0.1–6 mgP L−1 and 5–100 mgSi L−1 for phosphate and silicate, respectively. By using CIA coupled with PLS for data evaluation, the analysis of two analytes was achieved within 1.5 min with only single injection. The developed system was applied to natural water samples and the system was validated with the conventional methods. By statistical paired t-test, there was no evidence of significant difference at 95% confidence level (tstat = 2.28, tcritical = 2.31 and tstat = 0.62, tcritical = 2.31 for phosphate and silicate, respectively). This implied that the chemometrics-assisted CIA system was successfully developed for simultaneous spectrophotometric determination of phosphate and silicate.


Talanta | 2010

A low-cost method for determination of calcium carbonate in cement by membraneless vaporization with capacitively coupled contactless conductivity detection

K. Sereenonchai; Saowapak Teerasong; Sumonmarn Chan-Eam; Phoonthawee Saetear; Nathawut Choengchan; Kanchana Uraisin; Natchanon Amornthammarong; Shoji Motomizu; Duangjai Nacapricha


Mikrochimica Acta | 2009

Quality control of gasohol using a micro-unit for membraneless gas diffusion

Sasithorn Muncharoen; Jirayu Sitanurak; Warawut Tiyapongpattana; Nathawut Choengchan; Nuanlaor Ratanawimarnwong; Shoji Motomizu; Prapin Wilairat; Duangjai Nacapricha


Tetrahedron Letters | 2016

A highly selective ‘turn-on’ fluorescent sensor for Zn2+ based on fluorescein conjugates

Khwanchanok Chantalakana; Nathawut Choengchan; Peerada Yingyuad; Panumart Thongyoo


Sensors and Actuators B-chemical | 2017

A mobile phone-based analyzer for quantitative determination of urinary albumin using self-calibration approach

Arjnarong Mathaweesansurn; Noppadol Maneerat; Nathawut Choengchan


Journal of Nanoelectronics and Optoelectronics | 2013

Colorimetric Sensor Using Silver Nanoparticles for Determination of Hydrogen Peroxide Based on a Flow Injection System

Saowapak Teerasong; Thitaporn Sonsa-ard; Chavin Vimolkanjana; Nathawut Choengchan; Apiwat Chompoosor; Duangjai Nacapricha

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Saowapak Teerasong

King Mongkut's Institute of Technology Ladkrabang

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Arjnarong Mathaweesansurn

King Mongkut's Institute of Technology Ladkrabang

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Noppadol Maneerat

King Mongkut's Institute of Technology Ladkrabang

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