Chutipaijit, Sutee
Loading...
Preferred name
Chutipaijit, Sutee
Alternative Name
Chutipaijit, S.
Main Affiliation
Email
sutee.ch@kmitl.ac.th
9 results
Now showing 1 - 9 of 9
- Some of the metrics are blocked by yourconsent settings
Item type:Publication, N-doped Porous Carbon from Palm Male Flower via Hydrothermal Carbonization(2020-07-30) ;Verasarut, Panupong ;Liamprawat, Tanatorn ;Kaewtrakulchai, Napat; Panomsuwan, GasiditN-doped porous carbon materials were produced from palm male flower using hydrothermal carbonization processes at 200 C for 24 h followed by N-Doping and carbonization at 700C for 2 h. N-doping was carried out by impregnation using NH4OH at 0.5, 1.0, 1.5 M and 2 M. Products were characterized by means of chemical composition and morphology using SEM, XPS, and XRD to characterize specific properties such as physical morpholog, porosity, elemental composition on surface and crystalline structure of PMF. After applying hydrothermal carbonization processes, the results showed substantially increased porosity and surface area with suitable microstructure for N-doped electrodes applications. The highest porosity was obtained at NPC-1.5 M. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Nanoporous Carbon from Water Hyacinth Via Hydrothermal Carbonization(2020-07-30) ;Chanpee, Sirayu ;Suksai, Nattaya ;Kaewtrakulchai, Napat; Fuji, MasayoshiNanoporous carbon materials have been successfully synthesized from water hyacinth via hydrothermal carbonization (HTC). This research was studied the effect of hydrothermal temperature from 160 - 200 C and reaction time for 4 - 24 h. Afterwards, carbonization was carried out at the temperature of 600 - 900 C for 2 h in N2 atmosphere for developing porosity and even removing contaminants of hydrothermal char to obtain the porous carbon. The physico-chemical properties of nanoporous carbon materials were comprehensively characterized through Scanning electron microscope (SEM), Fourier transforms infrared spectroscopy (FT-IR), CHN elemental analysis, X-ray diffraction (XRD) and BET analysis. The adsorption capacity and carbon content of nanoporous carbon materials from water hyacinth were increased with increased hydrothermal carbonization temperature and time. Performing HTC at 200 C for 12 h. Is the optimum condition to synthesis of precursor materials for good adsorbent. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Valorization of horse manure conversion to magnetic carbon nanofiber for dye adsorption by hydrothermal treatment coupled with carbonization(2024-06-01) ;Kaewtrakulchai, Napat ;Chanpee, Sirayu ;Pasee, Warit ;Putta, AmpolPollution of water resources has recently increased as a result of expanded industrial activity. Recycling waste biomass into bio-adsorbent material offers a cheap, easy, and eco-friendly solution. In this study, magnetic carbon nanofibers (MCNF) with a highly porous structure were developed from magnetite-preloaded horse manure by hydrothermal treatment followed by carbonization using different ratios of iron (III) nitrate and iron oxide as magnetic precursors. The produced MCNF had a very porous structure with specific surface area of 435.31 m<sup>2</sup>/g and high carbon content. The magnetic characteristics of MCNF promoted by the presence of iron oxide species. The saturated magnetization of MCNF obtained from a 5:5 ratio of the magnetic precursors (iron (III) nitrate: iron oxide) was 2.48 emu/g. Synthesized MCNF was applied as a bio-adsorbent for methylene blue (MB) removal from aqueous solution, with results showing excellent dye adsorption of 92–99 %. MB adsorption was facilitated by pore filling, electrostatic contact, hydrogen bonding, and ion complexation. Experimental results indicated that the Freundlich isotherm and pseudo-second-order kinetic models concurred with the observed MB adsorption data, suggesting that the adsorption mechanism involved multilayered micropore interactions between magnetite and MB chemisorption. The resulting magnetic adsorbent was successfully removed from the aqueous solution by physical separation. Findings indicated that horse manure-derived MCNF could be used as an efficient bio-adsorbent to remove organic contaminants in wastewater. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Synthesis of porous carbon materials from water hyacinth via hydrothermal carbonization assisted chemical activation for carbon-based electrode applications(2020-10-26) ;Liamprawat, Tanatorn ;Verasarut, Panupong ;Kaewtrakulchai, Napat ;Panomsuwan, GasiditRecently, lignocellulosic materials have been widely utilized as feedstocks for several applications such as carbon, biofuels and biochemical productions because of their potentials (i.e. waste reduction, carbon sequestration, renewable). In this study, porous carbon was successfully synthesized from water hyacinth (WHs) via hydrothermal carbonization assisted with chemical activation using Na2CO3 and K2CO3. The hydrothermal carbonization process was studied in the range of 160-200°C for 4-12h and the hydrothermal chars were then further pyrolyzed under a supply of N2 flow 100ml/min at 700-900°C for 2h. The as-pyrolyzed chars were then activated by two different bases including Na2CO3 and K2CO3 at the ratio of 1.0 (w/w, hydrothermal char: chemical) to obtain highly porous carbon. The results indicated that carbon percentage, surface area and porous structure were improved with the higher hydrothermal temperature showing the best results at 180°C for 8h. Moreover, the development of pore structure of WHs porous carbon was successfully by chemical activation with K2CO3. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Highly porous carbon materials for adsorbent from water hyacinth via hydrothermal carbonization(2020-10-26) ;Chanpee, Sirayu ;Suksai, Nattaya ;Kaewtrakulchai, Napat; Fuji, MasayoshiCarbon nanoparticles have been successfully synthesized from waste lignin via carbonization and base activation. The effect of base activation on lignin transformation to carbon nanoparticles was investigated. Carbon nanoparticles from waste lignin via carbonization and base activation were denoted as CNPs. The physicochemical properties of CNPs were comprehensively characterized through a Scanning electron microscope (SEM), X-ray diffraction (XRD), and Raman spectroscopy. The results revealed that the condition using 5 wt% of sodium hydroxide (NaOH) and carbonization at 700°C on N2 atmosphere exhibited the highly porous structure of carbon nanoparticles. In conclusion, the NaOH-treated CNPs led to the production of high specific surface areas and high micropore volumes. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Effects of transition metal during the hydrothermal carbonization on characteristics of carbon materials(2018-09-05) ;Sangjumras, Peeranuch ;Udomsap, Parncheewa ;Kaewtrakulchai, Napat; Fuji, MasayoshiBiomass from the agriculture wastes can be transformed to valuable carbon support through hydrothermal carbonization (HTC). In this study, the biomass was hydrothermally treated at 200°C for 24 h in the presence of transition metals as catalysts. Various types of metal-salt solutions comprising of Cu(NO<inf>3</inf>)<inf>2</inf>, Cd(NO<inf>3</inf>)<inf>2</inf>, Fe(NO<inf>3</inf>)<inf>3</inf>, Ni(NO<inf>3</inf>)<inf>2</inf> and Ba(NO<inf>3</inf>)<inf>2</inf> with a concentration of 5 wt% during HTC, were investigated to study their effects on surface functional characteristics and morphological appearance of the synthesized carbons, which were subsequently characterized using FT-IR, and SEM analyses. Furthermore, the remaining metal particles on the synthesized carbon surface were found to be effective for catalytic applications. Thus, HTC of agriculture by-products in combination with the addition of transition metals would be an effective technique to prepare catalysts in a facile way. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Nanoporous Carbon from Water Hyacinth via Hydrothermal Carbonization assisted Chemical Activation for Dye adsorption(2022-07-01) ;Sukulbrahman, Manu ;Siraorarnroj, Siwat ;Suksai, Nattaya ;Kaewtrakulchai, NapatNanoporous carbon was successfully prepared by hydrothermal carbonization with chemical activation using water hyacinth as a raw material. The porous carbon was produced for the adsorption of methylene blue (MB), which is an organic pollutant in wastewater from several industries. The effect of various parameters such as pH, dye concentration and adsorption period time on dye removal were studied. The highest removal efficiency of MB obtained using WH nanoporous carbon was approximately 96.8-99.9% within an adsorption time between 10 and 30 min. The dye removal capacity increased with increasing of period time during the adsorption test. Moreover, the adsorption kinetics of MB during adsorption process was explained by the Langmuir and Freundlich adsorption isotherms. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Preparation of Activated Carbon from Various Biomasses by Single-Stage Pyrolysis(2022-02-04) ;Thowphan, Suwimon ;Kaewtrakulchai, Napat ;Jaruvanawat, Anuchit; Puengjinda, PramoteNowadays, activated carbon were successfully synthesized from biomass, Activated nanoporous carbon have been widely for several applications such as solution to air pollution, solution to water pollution. In this work, study the effects of pyrolysis temperature of activated carbon synthesized from coconut shell, coconut leaves, coconut bracts, cattail flower, cattail leaves, mangosteen bracts, durian bracts, corn leaves, eucalyptus bracts, sugarcane leaves and toddy palm bracts. The pyrolysis of various biomass was studied at the temperature of 700-900 °C for 2 h under N2 flow of 100 ml/min. The results showed that biomass types and pyrolysis temperature affects the structural and physicochemical properties of activated carbon such as pore structures, surface functional groups and elemental compositions. activated carbon obtained at 800 °C for 2 h had the highest composed of amorphous phase, porosity and surface area. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Coconut Residue-Derived Nanoporous Carbon via Hydrothermal Carbonization for Nanoporous Carbon-Based Supercapacitor Electrodes(2025-07-01) ;Ruenroengrit, Kemchat; ;Ruttanadech, Nuttapong ;Kaewtrakulchai, NapatPuengjinda, PramoteThe increasing demand for sustainable and cost-effective energy storage solutions has driven interest in biomass-derived carbon materials for supercapacitor electrodes. This study explores the valorization of coconut residue (CR), an abundant agricultural waste, as a carbon precursor for nanoporous carbon (NPC) production. NPC was synthesized via hydrothermal carbonization (HTC) of CR, followed by chemical activation using potassium hydroxide (KOH) at varying temperatures (700, 800, and 900 °C). The effects of activation temperature on the structure and electrochemical performance of the NPC were systematically investigated. The activated materials exhibited amorphous, highly porous structures, with surface areas increasing alongside activation temperature—reaching a maximum of 1969 m<sup>2</sup> g<sup>−1</sup> at 900 °C. Electrochemical characterization was conducted using a three-electrode setup through cyclic voltammetry (CV) and galvanostatic charge–discharge (GCD) in a 1 M Na<inf>2</inf>SO<inf>4</inf> electrolyte. The sample activated at 900 °C with a CR:KOH weight ratio of 1:2.5 achieved the highest specific capacitance of 52 F g<sup>−1</sup> at a specific current of 1 A g<sup>−1</sup>. These findings underscore the potential of CR as a low-cost and sustainable raw material for fabricating efficient electrode materials in energy storage applications.
