亚洲免费av电影一区二区三区,日韩爱爱视频,51精品视频一区二区三区,91视频爱爱,日韩欧美在线播放视频,中文字幕少妇AV,亚洲电影中文字幕,久久久久亚洲av成人网址,久久综合视频网站,国产在线不卡免费播放

        ?

        Speciation of organomercury compounds by capillary electrophoresis with pre-column derivatization and on-line stacking

        2019-04-11 02:39:14DndnCoYonggungYinBinHe
        Chinese Chemical Letters 2019年3期

        Dndn Co,Yonggung Yin,b,Bin He,b,*

        a State Key Laboratory of Environmental Chemistry and Ecotoxicology,Research Center for Eco-Environmental Sciences,Chinese Academy of Sciences,Beijing 100085,China

        b University of Chinese Academy of Sciences,Beijing 100049,China

        Keywords:

        ABSTRACT

        Simultaneous separation and detection of three organomercury species,namely methylmercury(MeHg),ethylmercury(EtHg),and phenylmercury(PhHg),was performed by using capillary electrophoresis(CE)with UV detection.Pre-column derivatization with thiosalicylic acid and on-line salt-induced stacking significantly improved the detection performance.Buffer pH,ion strength,and additive were optimized for CE separation,concentration of NaCl in sample solution and injection time were optimized for on-line stacking.The limits of detection were 76.9,83.0 and 76.4μg/L for PhHg,EtHg and MeHg,respectively.The developed method was validated by certified reference material and liquid chromatography-atomic fluorescence spectroscopy,which suggests this method could be useful in the speciation of organomercury compounds in biological samples.

        Mercury is one of the most toxic metals wildly present in the environment.Due to long-range transport,mercury pollution has become a global concern [1].Comprehensive Environmental Response,Compensation,and Liability Act(CERCLA)of US have listed mercury and its compounds in the“Priority List of Hazardous Substances”.The toxicity and bioaccumulation of mercury are highly dependent on its chemical species and organomercury compounds are generally more toxic and bioaccumulative than inorganic mercury [2].Methylmercury(MeHg),as the most toxic mercury compounds,can be produced naturally in anoxic sediment and water by microorganism,especially sulfur- and iron-reducing bacteria [3,4].Ethylmercury(EtHg)has also been observed in soils from wetland [5-7].In addition,EtHg [8] and phenylmercury(PhHg)[9]are widely used as antimicrobial agents in agriculture and medicine,and can be released into the environment [10,11].These organomercury compounds can be accumulated in biota,especially in fish [12] and pose risks to human health [13].

        Therefore,speciation analysis of organomercury compounds has become a hot topic,and a simple and cost-effective method is crucial for understanding their presences and risks in the environment.In the past decades,gas chromatography and high performance liquid chromatography(HPLC)have been widely applied to the separation of mercury species and various detectors were coupled to quantify mercury species,including UV,atomic fluorescence spectrometer(AFS),and inductively coupled plasma mass spectrometer(ICP-MS)[14].Capillary electrophoresis(CE)has the advantages of high separation efficiency,low sample consumption and operating cost,which is very promising for elemental speciation[15,16].However,currently UV spectrometer is still the most accessible detector for commercial CE,and mercury speciation using CE usually suffers from the weak UV absorption of mercury species as well as the insufficient sensitivity of the UV detector.

        To overcome these limitations,in this work,we present a new CE-UV method for separation and detection of three organomercury species namely MeHg,EtHg,and PhHg.Thiosalicylic acid(TA)was developed as the UV derivatization agent by a simple and fast pre-column complexation.In addition,on-line salt-induced stacking was further optimized to significantly improve the detection performance.The developed method was validated by analyzing MeHg and EtHg in biological samples.

        Since orgnomercury compounds such as MeHg and EtHg have no chromosphere,they are not readily detectable in their native forms,and pre- [17],in- [18],or post-column [19] derivatization using chromogenic compounds is often required.Selection of proper chromogenic compounds for derivatization is very important for the CE separation and UV detection.The derivatization reagent should have good water solubility and the derived products could be easily separated and detected by CE-UV [20].Although dithizone was often used for the derivatization and extraction of mercury compounds in spectroscopic determination,its poor aqueous solubility limits its application in aqueous CE.Here,we compared two commercial available derivatization agents for organomercury compounds,namely,ammonia pyrrolidine dithiocarbamate(APDC)and TA.We observed that the adsorption of hydrophobic derived products of APDC on the capillary wall is detrimental to CE separation.In contrast,TA(100μL of 1 mg/mL TA for 900μL of 40 mg/L organomercury compounds)can effectively complex organomercury compounds and the resulting complexes can be well detected by CE-UV.The typical electropherogram of organomercury compounds with TA as derivatization agent and the UV-vis spectroscopy of the three derivatives are shown in Figs.S1 and S2 in Supporting information.Therefore,TA was selected as derivatization reagent in the following study.

        Forefficient separation,two buffer systems including NH4Ac-HAc and borate buffer were studied.Three organomercury derivatives could be separated in baseline in both buffer systems,but a shorter electrophoretic time was obtained in borate buffer.Thus borate was adopted as the running bufferinthe final electrophoretic separation.The pH of running buffer was studied in the range from 8.0 to 10.0 using 30 mmol/L borate buffer as the background electrolyte.It was found that pH of the borate buffer had great influence on the separation and detection as illustrated in Fig.1.Broaden peaks were observed at low buffer pH for organomercury derivatives.With the increased buffer pH,the peak area of organomercury derivatives increased and high separation efficiency was acquired.In addition,the resolution of three organomercury derivatives also increased with the increase of buffer pH.However,when the buffer pH was higher than 9.2,the peak area decreased sharply and the peak shape deteriorated.AtpH9.2,the highest peak area and base line separation were observed.Therefore,borate buffer at pH 9.2 was selected for further research.

        The influence of the borate buffer concentration on separation and detection of organomercury species was further investigated in the range from 5 mmol/L to 40 mmol/L at pH 9.2(Fig.2).When the concentration of borate buffer was lower than 10 mmol/L,three organomercury species cannot reach a baseline separation.With the increase of borate concentration,both resolution and migration time of organomercury species increased.However,when the concentration of borate buffer reached 40 mmol/L,the electrophoretic current is not stable and the peak area decreased due to the peak broadening induced by Joule heat effect.Therefore,a final concentration of borate buffer at 30 mmol/L was selected.

        Fig.1.Effect of buffer pH on the separation of organomercury species.Sample:mixture standard of PhHg,EtHg and MeHg(40 mg/L for each).■,PhHg;●,EtHg;▲,MeHg;□,resolution of PhHg and EtHg;△,resolution of EtHg and MeHg.Capillary:75μm id with 45.0 cm total length; capillary temperature:20°C; voltage:20 kV;running buffer:30 mmol/L borate buffer;detection wavelength:210 nm;injection:30 mbar×10 s.

        Fig.2.Effect of borate buffer concentration on the separation of organomercury species.Sample:PhHg,EtHg and MeHg mixture standard(20 mg/L for each).■,PhHg; ●,EtHg; ▲,MeHg; □,resolution of PhHg and EtHg;△,resolution of EtHg and MeHg.Other conditions were the same as in Fig.1.

        In addition,sodium dodecyl sulfate(SDS)surfactant and organic modifiers including methanol and acetonitrile were also studied as buffer additive to improve the separation.However,it was found that addition of SDS or organic modifiers resulted in longer separation time and no improvement of separation was observed.Therefore,no SDS and organic solvent were added in the background electrolyte.

        Thus,a 30 mmol/L borate buffer at pH 9.2 was selected as the separation buffer in CE.Under the optimized conditions,the baseline separation of three organomercury species could be realized in 4 min.However,the detection limits of the method were about 1 mg/L for three organomercury species,which was far more satisfactory for analysis of organomercury in real environmental samples.Considering that,an on-line salt-induced stacking procedure was studied to further improve the sensitivity of this method.

        The NaCl concentration in sample solutions and the injection time were optimized to realize the on-line stacking.Fig.3 showed that when no NaCl was added in the sample,no stacking was observed.When the concentration of NaCl was higher than 30 mmol/L,splitting peaks appeared for three organomercury species,which was attributed to the electrolyte “memory effect”[21].High sensitivity and satisfactory separation can be obtained when the concentration of NaCl in sample matrix was 20 mmol/L and then 20 mmol/L NaCl was selected as additive in sample matrix.The mechanism of on-line stacking was ascribed to transient isotachophoresis [22].In stacking process,chloride in the sample served as leading ion,while borate ion in the background electrolyte as the terminating one[22].Injection time was also investigated from 20 s to 240 s at the injection pressure of 30 mbar(Fig.S3 in Supporting information).The peak area increased with the increasing injection time; however,when the injection time was longer than 180 s,the baseline separation of three organomercury species cannot be achieved.Considering both of the resolution and sensitivity,the injection time of 180 s was selected.

        Fig.3.Effect of NaCl concentration in sample matrix on stacking.From bottom to top,the concentrations of NaCl in sample matrix were(a)0,(b)10,(c)20,(d)30,(e)40,(f)50 mmol/L,respectively.Capillary:75μm id with 73.5 cm total length;injection:30 mbar×100 s.Other conditions were the same as in Fig.1.

        A typical electrohopherogram of MeHg,EtHg,and PhHg at optimized conditions is shown in Fig.4.As can be seen,three organomercury species can be separated effectively in 25 min.Table S1(Supporting information)shows the characteristics of the proposed method.The linearity of organomercury compounds was ranged from 400 μg/L to 2000μg/L for PhHg,200-2000μg/L for EtHg and MeHg.The detection limits(S/N=3)were 76.4μg/L for MeHg,83.0μg/L for EtHg and 76.9μg/L for PhHg,respectively.As shown in Table S2(Supporting information),the detection limits of organomercury species obtained in this work are comparable to other CE-hyphenated methods [23-26].

        An alkaline extraction method was used for extracting organomercury compounds in the biological samples,and the final sample for CE injection was dissolved in a 10 mmol/L Na2S2O3solution.The influence of Na2S2O3on the stacking and separation was investigated.The results showed that 10 mmol/L Na2S2O3has no influence on both on-line stacking and separation of the three organomercury species.

        In order to validate the method developed in the present study,MeHg content in certified reference material DORM-2(dogfish muscle)was determined.As shown in Table S3(Supporting information),the result was in good agreement with the certified value.In addition,this method was used to determine the concentration of EtHg in fish tissues(Chinese rare minnow)exposed by EtHg chloride.The results agreed well with those obtained by high performance liquid chromatography-atomic fluorescence spectroscopy(Table S3 and Fig.4).

        Fig.4.Electropherograms of(a)the extract of fish tissue exposed by EtHg,(b)the extract of a certified reference material DORM-2(dogfish muscle);(c)the extract of DORM-2 spiked with organomercury at 600μg/L(as Hg).Injection:30 mbar×180 s.All other conditions were the same as in Fig.S3.

        In conclusion,a novel capillary electrophoresis method for the speciation of MeHg,EtHg,and PhHg has been developed.Precolumn UV derivatization and on-line stacking were optimized to improve the analytical performance.The developed method was validated by certified reference material and exposed fish sample,which suggests this method could be useful in the speciation of organomercury compounds in biological samples.

        Acknowledgment

        We gratefully acknowledge the National Natural Science Foundation of China(No.21777178)for financial support.

        Appendix A.Supplementary data

        Supplementary material related to this article can be found,in the online version,at doi:https://doi.org/10.1016/j.cclet.2018.10.015.

        av无码国产在线看免费网站| 亚洲色图第一页在线观看视频| 人妻少妇偷人精品一区二区| 欧美老妇交乱视频在线观看| 亚洲中文字幕无码久久| 全部免费国产潢色一级| 日本女优禁断视频中文字幕| 久久天天躁夜夜躁狠狠85麻豆| 国精品无码一区二区三区在线 | 女人的天堂av免费看| 99麻豆久久精品一区二区| 欧美成人猛片aaaaaaa| 国产超碰人人做人人爱ⅴa| 白色橄榄树在线免费观看| 国产一区二区三区精品毛片| 国产大片内射1区2区| 人妻被黑人粗大的猛烈进出 | 亚洲成av人片在线观看无码| 北岛玲中文字幕人妻系列| 亚洲第一女优在线观看| 久久精品亚洲精品国产色婷| 国农村精品国产自线拍| 日韩一区二区三区中文字幕| 亚洲写真成人午夜亚洲美女| 欧美a级毛欧美1级a大片免费播放| 98色花堂国产精品首页| 亚洲精品在线观看自拍| 久久精品免费一区二区喷潮| 中国熟妇人妻xxxxx| 加勒比在线一区二区三区| 青青草视频在线观看绿色| 久久天天躁狠狠躁夜夜avapp| 韩国三级大全久久网站| 日韩激情无码免费毛片| 男人j进女人p免费视频| 一区二区日本免费观看| 无套中出丰满人妻无码| 亚洲一区二区三区偷拍女厕| 成人精品国产亚洲av久久| 天堂一区二区三区在线观看视频| 久久久久久人妻一区二区三区|