• 제목/요약/키워드: biosorption mechanism

검색결과 16건 처리시간 0.025초

Biosorption of Lead(II) by Arthrobacter sp. 25: Process Optimization and Mechanism

  • Jin, Yu;Wang, Xin;Zang, Tingting;Hu, Yang;Hu, Xiaojing;Ren, Guangming;Xu, Xiuhong;Qu, Juanjuan
    • Journal of Microbiology and Biotechnology
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    • 제26권8호
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    • pp.1428-1438
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    • 2016
  • In the present work, Arthrobacter sp. 25, a lead-tolerant bacterium, was assayed to remove lead(II) from aqueous solution. The biosorption process was optimized by response surface methodology (RSM) based on the Box-Behnken design. The relationships between dependent and independent variables were quantitatively determined by second-order polynomial equation and 3D response surface plots. The biosorption mechanism was explored by characterization of the biosorbent before and after biosorption using atomic force microscopy (AFM), scanning electron microscopy, energy dispersive X-ray spectroscopy, X-ray diffraction, and Fourier transform infrared spectroscopy. The results showed that the maximum adsorption capacity of 9.6 mg/g was obtained at the initial lead ion concentration of 108.79 mg/l, pH value of 5.75, and biosorbent dosage of 9.9 g/l (fresh weight), which was close to the theoretically expected value of 9.88 mg/g. Arthrobacter sp. 25 is an ellipsoidal-shaped bacterium covered with extracellular polymeric substances. The biosorption mechanism involved physical adsorption and microprecipitation as well as ion exchange, and functional groups such as phosphoryl, hydroxyl, amino, amide, carbonyl, and phosphate groups played vital roles in adsorption. The results indicate that Arthrobacter sp. 25 may be potentially used as a biosorbent for low-concentration lead(II) removal from wastewater.

Biosorption and Elution of Lead by Undaria pinnatifida

  • Suh, Jung-Ho;Suh, Myung-Gyo;Lee, Yong-Hee;Lee, Kook-Eui;Kim, Bong-Seob
    • 한국환경보건학회:학술대회논문집
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    • 한국환경보건학회 2003년도 Challenges and Achievements in Environmental Health
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    • pp.111-115
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    • 2003
  • Biosorption of lead by marine algae, Undaria pinnatifida, was examined. The biosorption capacity of lead by U. pinnatifida was above 30% of its own weight and proportional to the initial lead concentration. However, the opposite result was shown in different initial weight of biomass. The mechanism of biosorption was accorded to the ion exchange process.

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유기물 생흡착 현상에 관한 기초연구 (Characteristics of Carbon Source Biosorption)

  • 이동훈;이두진;김승진;정진욱;배우근
    • 한국물환경학회지
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    • 제22권1호
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    • pp.23-29
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    • 2006
  • Biosorption technology was used to remove hazardous materials from wastewater, herbicide, heavy metals, and radioactive compounds, based on binding capacities of various biological materials. Biosorption process can be explained by two steps; the first step is that target contaminants is in contact with microorganisms and the second is that the adsorbed target contaminants is infiltrated with inner cell through metabolically mediated or physico-chemical pathways of uptake. Until recently, no information is available to explain the definitive mechanism of biosorption. The purpose of this study is to evaluate biosorption capabilities of organic matters using activated sludge and to investigate affecting factors upon biosorption. Over 49% of organic matter could be removed by positive biosorption reaction under anoxic condition within 10 minutes. The biosorption capacities were constant at around 50 mg-COD/mg-MLSS for all batch experiments. As starvation time increased under aerobic or anaerobic conditions, biosorption capacity increased since higher stressed microorganisms by starvation was more brisk. Starvation stress of microorganisms was higher at aerobic condition than anaerobic one. As temperature increased or easily biodegradable carbon sources were used, biosorption capacities increased. Consequently, biosorption can be estimated by biological -adsorbed capability of the bacterial cell-wall and we can achieve the cost-effective and non -residual denitrification with applying biosorption to the bio-reduction of nitrate.

Removal of Pb(II) from wastewater by biosorption using powdered waste sludge

  • Jang, Hana;Park, Nohback;Bae, Hyokwan
    • Membrane and Water Treatment
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    • 제11권1호
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    • pp.41-48
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    • 2020
  • Lead is a highly toxic heavy metal that causes serious health problems. Nonetheless, it is increasingly being used for industrial applications and is often discharged into the environment without adequate purification. In this study, Pb(II) was removed by powdered waste sludge (PWS) based on the biosorption mechanism. Different PWSs were collected from a submerged moving media intermittent aeration reactor (SMMIAR) and modified Ludzack-Ettinger (MLE) processes. The contents of extracellular polymeric substances were similar, but the surface area of MLE-PWS (2.07 ㎡/g) was higher than that of SMMIAR-PWS (0.82 ㎡/g); this is expected to be the main parameter determining Pb(II) biosorption capacity. The Bacillaceae family was dominant in both PWSs and may serve as the major responsible bacterial group for Pb(II) biosorption. Pb(II) biosorption using PWS was evaluated for reaction time, salinity effect, and isotherm equilibrium. For all experiments, MLE-PWS showed higher removal efficiency. At a fixed initial Pb(II) concentration of 20 mg/L and a reaction time of 180 minutes, the biosorption capacities (qe) for SMMIAR- and MLE-PWSs were 2.86 and 3.07 mg/g, respectively. Pb(II) biosorption using PWS was rapid; over 80% of the maximum biosorption capacity was achieved within 10 minutes. Interestingly, MLE-PWS showed enhanced Pb(II) biosorption with salinity values of up to 30 g NaCl/L. Linear regression of the Freundlich isotherm revealed high regression coefficients (R2 > 0.968). The fundamental Pb(II) biosorption capacity, represented by the KF value, was consistently higher for MLE-PWS than SMMIAR-PWS.

화학적으로 변형된 하수슬러지를 이용한 반응성염료의 생물흡착 (Biosorption of Reactive Dyes using Chemically Modified Sewage Sludge)

  • 한민희;최기욱;윤영상
    • 청정기술
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    • 제13권3호
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    • pp.215-221
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    • 2007
  • 생물흡착은 염색폐수로부터 염료를 제거하기 위한 기술로서 현재 사용되고 있는 기술을 대체할 수 있는 유망한 처리 방법이다. 본 연구에서는 생물흡착제로써 저가이면서 풍부한 소재중의 하나인 하수 슬러지를 이용하였다. 본 연구의 목적은 바이오매스의 변형을 통하여 흡착능력을 향상시키는데 있다. FT-IR 분석과 적정실험을 통하여 흡착에 관여하는 작용기는 카르복실 그룹, 인산 그룹, 아민 그룹으로 판명하였으며 그 중에서 반응성 염료(Reactive Red 4, RR 4)를 흡착할 수 있는 작용기는 아민 그룹임을 알 수 있었다. 또한 음이온성 염료인 RR 4의 흡착을 저해하는 것으로 생각되는 카르복실 그룹을 제거함으로써 흡착성능을 향상시킬 수 있었다. 그 결과, 카르복실 그룹이 제거된 바이오매스의 최대 흡착량이 변형 전에 비해 pH 2에서는 130%, pH 4에서는 210% 증가하였다. 그러므로 화학적으로 변형시킨 하수 슬러지는 산업폐수내 염료제거에 효과적이면서 값싼 생물흡착제로 이용될 수 있을 것으로 기대된다.

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Reduction Kinetics of Hexavalent Chromium during Biosorption onto the Protonated Ecklonia Biomass

  • 박동희;윤영상;박정진;김상민;박종문
    • 한국생물공학회:학술대회논문집
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    • 한국생물공학회 2000년도 춘계학술발표대회
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    • pp.113-116
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    • 2000
  • Hexavalent chromium was removed by means of biosorption onto the protonated brown seaweed biomass. During the biosorption Cr(VI) was reduced to Cr(III), which resulted in accumulation of Cr(III) in the solution. The Cr(VI) reduction rate increased with increases of initial Cr(VI) and biosorbent concentrations and decrease of solution pH. Based upon the experimental results at various conditions, we suggested the mechanism for the chromium removal as following serial reactions: (1) sorption of anionic Cr(VI) onto the positively charged site of biomass, (2) reduction of Cr(VI) to Cr(III) on the positively charged site, (3) desorption of Cr(III) from the positively charged site, and (4) sorption of cationic Cr(III) onto the negatively charged site of biomass.

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Biosorption of Hg(II) ions from synthetic wastewater using a novel biocarbon technology

  • Singanan, Malairajan
    • Environmental Engineering Research
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    • 제20권1호
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    • pp.33-39
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    • 2015
  • Mercury is a toxic pollutants present in different types of industrial effluents and is responsible for environmental pollution. Removal of Hg(II) ions from synthetic wastewater was studied using the activated biocarbon produced from the leaves of Tridax procumbens (Asteraceae). The particle size of the biocarbon (BC) is in the range of $100-120{\mu}m$. The effects of initial metal ion concentration, pH, contact time, and amount of biocarbon on the biosorption process were studied at temperature of $28{\pm}2^{\circ}C$. Batch experimental studies showed that an equilibrium time of 160 min was required for the maximum removal of Hg(II) at the optimized biocarbon dose of 2.5 g per 100 mL of synthetic wastewater. The optimum pH required for maximum removal (96.5%) of Hg(II) ions was found to be 5.5. The biosorption of metal ions onto activated biocarbon surface is probably via an ion exchange mechanism. The biocarbon can be regenerated with minimum loss. Further, it can be reused without any chemical activation. The findings of the research suggested that, the biocarbon produced from cost effective renewable resources can be utilized for the treatment of industrial wastewater.

Application of radiotracer technique in remediation of Zn(II) from aqueous solutions by dry cowdung powder

  • Shaikh, Sabrina Afzal;Bagla, Hemlata Kapil
    • Nuclear Engineering and Technology
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    • 제54권2호
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    • pp.456-461
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    • 2022
  • Heavy metal pollution is caused due to anthropogenic activities and is considered as a serious environmental problem which endangers human health and environment. The present study deals with biosorption, an eco-friendly technique for the removal of heavy metal Zn(II) from aqueous medium. Various natural materials have been explored for the uptake of metal ions, where most of them are physically or chemically enhanced. Dry cowdung powder (DCP) has been utilized as a low-cost, environmentally friendly humiresin without any pre-treatment, thus demonstrating the concept of Green Chemistry. Batch biosorption studies using 65Zn(II) tracer were performed and the impact of different experimental parameters was studied. Results revealed that at pH 6, 94 ± 2% of Zn(II) was effectively biosorbed in 5 min, at 303 K. The process was spontaneous and exothermic, following pseudo-second-order reaction. The mechanism of heavy metal biosorption employing green adsorbent was therefore elucidated in order to determine the optimal method for removing Zn(II) ions. DCP has a lot of potential in the wastewater treatment industry, as seen by its ability to meet 3A's affordability, adaptability, and acceptability criteria. As a result, DCP emerges as one of the most promising challengers for green chemistry and the zero-waste idea.

바이오매스를 이용한 6가 크롬의 제거 (Removal of Hexavalent Chromium by using Biomass)

  • 박동희;박종문
    • Korean Chemical Engineering Research
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    • 제44권2호
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    • pp.107-113
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    • 2006
  • 6가 크롬은 매우 유독한 중금속이면서도 토양 및 지하수의 주요 오염물질 중 하나이다. 따라서 6가 크롬을 함유한 폐수는 자연계에 방류되기 전에 반드시 처리되어야 한다. 이를 위한 한 가지 방법으로 자연계에 풍부하게 존재하는 바이오매스를 이용해 6가 크롬을 제거하는 기술이 최근에 주목을 받고 있다. 즉, 이번 총론에서는 바이오매스에 의한 6가 크롬의 제거에 대한 현재까지의 연구 상황 및 향후의 연구 방향에 대해 살펴 보았다. 특히, 이 분야에서 종종 실수하고 있는 부분에 대해 상세히 다룸으로써 관련 연구자들에게 도움을 주고자 하였다.

고율 조류 바이오매스 반응기에서 조사시간으로 본 Zygnema sterile과 Lepocinclism textra 바이오매스의 질소, 인 이온 생흡착의 비교 (Comparison of Biosorption of N, P ions by Zygnema sterile and Lepocinclism textra Biomass under Irradiation Period in High Rate Algae Biomass Reactor)

  • 공석기
    • 환경위생공학
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    • 제22권4호
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    • pp.11-21
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    • 2007
  • The recent investigation indicates that the kinetic constants for anionic ions were merely the result of ion exchange between the algae cell wall surface and the anionic ion. In this study, Zygnema sterile and Lepocinclism textra, floating flagellate alga as the dominant algae strains, were cultivated using HRABR(High Rate Algae Biomass Reactor) and the cultivation conditions were 24 hrs. and 12 hrs. irradiation and it was studied how this algal biomass acts on the biosorption mechanism of anionic N and P. Results are as follows : 1. Calculating the specific chl.-a growth rate using Michaelis-Menten model, the one of 24hrs. irradiation was about 55 times higher than the one of 12 hrs. irradiation 2. Calculating the specific chl.-a growth rate using Kuo model, the one of 24 hrs. irradiation was about 2.26 times higher than the one of 12 hrs. irradiation 3. Langmuir model can apply to the biosorption mechanism of anionic N and P in HRABP. 4. Regarding the chlorophyll-a concentration as unit weight of sorbent, the ion selectivity coefficients for N and P are as follows : $(NH_3-N)+(NO_3-N)$ in 24 hrs. irradiation ; 44.984 $PO_4-P$ in 24 hrs. irradiation ; 24.237 $(NH_3-N)+(NO_3-N)$ in 12 hrs. irradiation ; 1432.851 $PO_4-P$ in 12 hrs. irradiation ; 599.076