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1.
建立了基于新制备的天然低共熔溶剂悬浮固化(SFNADES)分散液-液微萃取结合高效液相色谱法(HPLC)检测环境样品中酮康唑、克霉唑、特比萘芬和益康唑4种抗真菌药的分析方法。选用月桂酸为氢键供体,正辛醇为氢键受体合成的天然低共熔溶剂(NADES)作为萃取剂。通过优化萃取剂的种类与摩尔比、萃取剂体积、样品体积、样品pH值与离子强度、涡旋时间及离心时间等获得了最佳萃取效率。在最优条件下,方法的线性范围为0.56~500μg/L,线性系数(r2)≥0.999 8,检出限为0.17~0.80μg/L,定量下限为0.56~2.67μg/L,富集倍数为101~114,日内和日间相对标准偏差(n=6)分别不大于4.8%和5.4%。该方法已成功用于实际水样和人尿中抗真菌药的检测,回收率为91.5%~107%。  相似文献   

2.
基于超声辅助原位生成低共熔溶剂(DES)的分散液-液微萃取-悬浮固化(UA-IF-DLLMESFDES)并结合大体积样品堆积毛细管电泳,建立了对环境水样中加替沙星、洛美沙星、环丙沙星和氟罗沙星4种氟喹诺酮类药物(FQs)进行萃取和测定的新方法。实验筛选出甲基三辛基溴化铵作为氢键受体(HBA),庚酸为氢键供体(HBD),以原位生成方法制备的DES为萃取剂,并对DES的种类及用量、原位生成条件、盐用量、涡旋时间等影响萃取效率的实验条件进行了优化。结果表明,在最佳实验条件下,4种目标物的检出限(S/N=3)和定量下限(S/N=10)分别为0.6~5.5μg/L和2.0~18.3μg/L,富集倍数为89~129,日内和日间相对标准偏差(RSD)分别为3.5%~5.9%和4.5%~7.1%,加标回收率为75.6%~110%。所建立的方法成功应用于实际水样中4种FQs的检测。  相似文献   

3.
建立了水样中7种萘二酚的涡旋辅助分散液液微萃取-悬浮固化/高效液相色谱(VA-DLLMESFO/HPLC)测定方法。以乙醚-十二醇为二元微萃取剂,通过涡旋分散方式协同萃取水样中的目标化合物,采用C18色谱柱分离,HPLC测定。优化了萃取剂及用量、萃取时间、氯化钠用量等条件。最佳萃取条件为:萃取剂为100μL乙醚和50μL十二醇,氯化钠用量为0.2 g/m L,涡旋萃取3 min。在优化条件下,7种萘二酚在一定质量浓度范围内线性关系良好,相关系数均大于0.997,方法检出限(S/N=3)为1.7~6.0μg/L;3个加标水平下的平均回收率为82.1%~106.0%,日内相对标准偏差(RSD,n=5)为1.2%~4.1%;中间添加水平的日间RSD(n=5)为2.5%~5.7%。该方法前处理简单,涡旋分散大大提高了物质传质速率,增大了萃取效率,缩短了萃取时间,是一种适用于水样中萘二酚类物质富集检测的绿色方法。  相似文献   

4.
将癸酸和香叶醇在10 mL玻璃管中以2∶1的物质的量之比混合,然后将混合物在80℃水浴锅中加热,直至形成稳定的低共熔溶剂(DES)。该溶剂易合成、低成本、低毒性且具有高生物降解性,是一种新型的疏水性DES,可用于水产品中内分泌干扰物的微萃取。取已粉碎的水产品样品1 g和乙腈2 mL置于5 mL离心管中,以转速2 000 r·min^(-1)涡旋振荡3 min。取上清液400μL,经0.45μm滤膜过滤,滤液与100μL DES混合,并迅速注入装有5 mL 80 g·L^(-1)氯化钠溶液的10 mL离心管中,以完成DES的分散。将上述离心管以转速3 500 r·min^(-1)离心5 min,然后置于冰浴中进行固化。将固化后所得样品溶解于150μL甲醇中,以Eclipse Plus C;色谱柱为分离柱,以体积比90∶10的甲醇-水的混合液为流动相,在激发波长228 nm,发射波长305 nm处测定双酚A、4-叔辛基苯酚和壬基酚等3种内分泌干扰物的含量。结果表明,DES在冰浴中固化,可促进其从水溶液中分离,简单且快速,利于萃取剂的收集。3种内分泌干扰物的质量分数均在0.25~10μg·g^(-1)内与其对应的峰面积呈线性关系,检出限(3S/N)均为0.075μg·g^(-1)。用此法对空白加标样品进行测定,测定值的日内和日间相对标准偏差(n=5)均小于4.0%。以空白样品为基体进行加标回收试验,所得回收率为78.7%~91.6%。  相似文献   

5.
用分散液液微萃取-气相色谱/质谱法测定水样中的16种多环芳烃(PAHs)。通过实验确定最佳萃取条件为:20μL四氯化碳作萃取剂,1.0 mL乙腈作分散剂,超声萃取1 min。在优化条件下,多环芳烃的富集倍数达到216~511,方法在0.05~50μg/L范围内呈良好的线性关系,相关系数(R2)在0.9873~0.9983之间,检出限为0.0020~0.14μg/L。相对标准偏差(RSD)在3.82%~12.45%(n=6)之间。该方法成功用于实际水样中痕量多环芳烃的测定。  相似文献   

6.
建立了液-液萃取气相色谱法测定地表水中痕量苯酚的方法。用盐酸调节水样至pH2左右,以二氯乙烷-乙酸乙酯(体积比为2∶1)混合溶液为萃取剂,以CD-5色谱柱进行分离,氢火焰离子化检测器检测苯酚的含量。苯酚的质量浓度在1.00~20.0μg/L范围内与其色谱峰面积呈良好的线性关系,线性相关系数r=0.999 3,检出限为0.03μg/L。样品加标回收率为93.0%~97.0%,测定结果的相对标准偏差小于2%(n=7)。该方法检出限低,精密度和准确度高,操作简便,适用于地表水中微量苯酚的分析。  相似文献   

7.
以不同氢键供体和氢键受体合成的10种疏水型低共熔溶剂(DES)作为溶剂提取食品中合成色素,辅助液-液微萃取前处理技术,建立同时测定10种水溶性色素的高效液相色谱方法。结果表明:由四丁基氯化铵和辛酸合成的低共熔溶剂提取色素的效果最好,在最佳萃取条件(含水量0,摩尔比1∶3,提取剂用量500μL,提取温度20℃、振摇时间20 min)下,色素的回收率达83.5%~119.8%,仪器检出限为11.3~500.0μg/L。应用建立的方法测定汽水和糖果中的色素,赤藓红加标回收率在40%左右,其余色素加标回收率在77.8%~102.7%之间,相对标准偏差小于5.3%。  相似文献   

8.
《分析试验室》2021,40(9):1035-1038
建立了基于分散液液微萃取(DLLME)-数字成像比色(DIC)法测定水样中Fe的方法。在乙酸-乙酸钠缓冲溶液中,Fe(Ⅲ)被盐酸羟胺还原成Fe(Ⅱ)后与邻菲罗啉作用生成橙红色络合物。以离子液体[C6M IM][PF6]为萃取剂,乙腈为分散剂,采用涡旋辅助的分散液液微萃取方法对该络合物进行萃取和富集后,直接通过手机比色装置对Fe进行测定。优化了手机比色装置参数和分散液液微萃取的萃取剂种类及用量、分散剂种类及用量等条件。结果表明,在最佳条件下,方法的线性范围为24~200μg/L,相关系数(r~2)为0.9973,检出限为3μg/L,加标回收率为90.0%~108.0%,相对标准偏差(RSD)为0.8%~1.8%。该方法可用于测定环境水样中痕量Fe。  相似文献   

9.
采用氯化胆碱和苯酚合成低共熔溶剂(DES),以其为萃取剂建立了分散液液微萃取(DLLME)结合超高效液相色谱-串联质谱(UPLC-MS/MS)测定马肉中10种非甾体抗炎药的方法。优化了提取溶剂、萃取剂、分散剂和盐的加入量等条件,最佳萃取条件为:以氯化胆碱和苯酚(比例为1∶2)合成的低共熔溶剂为萃取剂,马肉样品经5 mL含10 mmol/L抗坏血酸的20 mmol/L醋酸铵缓冲液(乙酸调至pH 3.5)提取,加入1.0 g氯化钠、0.8 mL萃取剂和0.8 mL分散剂,旋涡混合1 min,离心后取上清液经超高效液相色谱-串联质谱测定,外标法定量。结果显示,10种非甾体抗炎药在各自质量浓度范围内呈良好线性关系,相关系数(r2)均大于0.996,检出限为0.05~2.0 μg/kg,定量下限为0.10~5.0 μg/kg,平均回收率为73.5%~94.6%,相对标准偏差(RSD)为1.1%~8.1%。该方法操作简单、准确高效、绿色环保,可用于马肉中非甾体抗炎药的测定。  相似文献   

10.
建立小体积液液萃取-气相色谱-三重四极杆串联质谱法测定地下水中32种半挥发性有机污染物(SVOCs)的方法。采用2 mL二氯甲烷和正己烷混合溶剂(体积比为1∶1)加入到20 mL水样中,添加2 g NaCl,涡旋萃取60 s,经DB-5MS UI色谱柱(30 m×0.25 mm,0.25μm)分离,SRM模式检测,内标法定量。32种SVOCs的质量浓度在0.5~20μg/L范围内与色谱峰面积具有良好的线性关系,相关系数均大于0.995,方法检出限为0.002~0.06μg/L。样品加标回收率为72.5%~129%,测定结果的相对标准偏差为0.65%~21.1%(n=6)。该方法样品处理简单快捷,所需水样和有机试剂体积较少,能够满足地下水中32种SVOCs的高效测定。  相似文献   

11.
The reactions of N-substituted hydroxylamines with alkenals serve as a method for the synthesis of the corresponding 2-substituted 3(5)-hydroxyisoxazolidines. The reaction pathway is determined by the nature of the substituent attached to the nitrogen atom. Ring-chain isomerism has been detected in these newly obtained compoundsTranslated from Khimiya Geterotsiklicheskikh Soedinenii, No. 9, pp. 1270–1276, September, 1987.  相似文献   

12.
13.
Triazenide [M(eta2-1,3-ArNNNAr)P4]BPh4 [M = Ru, Os; Ar = Ph, p-tolyl; P = P(OMe)3, P(OEt)3, PPh(OEt)2] complexes were prepared by allowing triflate [M(kappa2-OTf)P4]OTf species to react first with 1,3-ArN=NN(H)Ar triazene and then with an excess of triethylamine. Alternatively, ruthenium triazenide [Ru(eta2-1,3-ArNNNAr)P4]BPh4 derivatives were obtained by reacting hydride [RuH(eta2-H2)P4]+ and RuH(kappa1-OTf)P4 compounds with 1,3-diaryltriazene. The complexes were characterized by spectroscopy and X-ray crystallography of the [Ru(eta2-1,3-PhNNNPh){P(OEt)3}4]BPh4 derivative. Hydride triazene [OsH(eta1-1,3-ArN=NN(H)Ar)P4]BPh4 [P = P(OEt)3, PPh(OEt)2; Ar = Ph, p-tolyl] and [RuH{eta1-1,3-p-tolyl-N=NN(H)-p-tolyl}{PPh(OEt)2}4]BPh4 derivatives were prepared by allowing kappa1-triflate MH(kappa1-OTf)P4 to react with 1,3-diaryltriazene. The [Os(kappa1-OTf){eta1-1,3-PhN=NN(H)Ph}{P(OEt)3}4]BPh4 intermediate was also obtained. Variable-temperature NMR studies were carried out using 15N-labeled triazene complexes prepared from the 1,3-Ph15N=N15N(H)Ph ligand. Osmium dihydrogen [OsH(eta2-H2)P4]BPh4 complexes [P = P(OEt)3, PPh(OEt)2] react with 1,3-ArN=NN(H)Ar triazene to give the hydride-diazene [OsH(ArN=NH)P4]BPh4 derivatives. The X-ray crystal structure determination of the [OsH(PhN=NH){PPh(OEt)2}4]BPh4 complex is reported. A reaction path to explain the formation of the diazene complexes is also reported.  相似文献   

14.
The values of activation parameters in uncured and cured epoxy resins, rubbers, and blends thereof are investigated. The dependences of activation energy and adhesion strength of epoxy-rubber compositions on rubber content are determined. The correlation of adhesion and activation energy values for polyurethane rubber and epoxy-rubber compositions is shown.  相似文献   

15.
Aroyl- and acetylhydrazones of acet- (I) and benzaldehydes (IV) and benzoylhydrazones of acet- (II) and benzaldehydes (III) were studied by x-ray structural and quantum-chemical methods in order to establish their structures. Compund (I) was the EEZ structure in the crystal. Calculations and spectral data showed that the EEE form occurs in nonpolar solvents and in the gas phase. According to crystallographic data molecules (I)–(IV) are the E-isomers (relative to the N-N bond) and the hydrazone fragments are planar. Intermolecular N-H...O H-bonds from in the crystals. The data obtained suggest that the majority of acylhydrazones are conformationally rigid on dissolution although exceptions do occur. Apparently the reasons for the difference of acetyl- and benzoylhydrazones in electrocarboxylation reactions are electronic and not steric factors.Translated from Izvestiya Akademii Nauk SSSR, Seriya Khimicheskaya, No. 1, pp. 75–81, January, 1991.  相似文献   

16.
Conclusions The mass and NMR spectra of haplophyllidine, perforine, and their derivatives have been studied. The influence of the open and cyclic forms of the molecular ion on the nature of the fragmentation has been discussed. The main routes of fragmentation of the compounds considered are due to the presence of substituents at C8 and C4.Khimiya Prirodnykh Soedinenii, Vol. 5, No. 4, pp. 273–279, 1969  相似文献   

17.
Reaction of the proligand Ph2PN(SiMe3)2 (L1) with WCl6 gives the oligomeric phosphazene complex [WCl4(NPPh2)]n, 1 and subsequent reaction with PMe2Ph or NBu4Cl gives [WCl4(NPPh2)(PMe2Ph)] (2) or [WCl5(NPPh2)][NBu4] (3), respectively. DF calculations on [WCl5(NPPh2)][NBu4] show a W=N double bond (1.756 A) and a P-N bond distance of 1.701 A, which combined with the geometry about the P atom suggests, there is no P-N multiple bonding. Reaction of L1 with [ReOX3(PPh3)2] in MeCN (X = Cl or Br) gives [ReX2(NC(CH3)P(O)Ph2)(MeCN)(PPh3)](X = Cl, 4, X = Br, 5) which contains the new phosphorylketimido ligand. It is bound to the rhenium centre with a virtually linear Re-N-C arrangement (Re-N-C angle = 176.6 degrees, when X = Cl) and there is multiple bonding between Re and N (Re-N = 1.809(7) A when X = Cl). The proligand Ph2PNHNMe2(L2H) reacts with [(C5H5)TiCl3] to give [(C5H5)TiCl2(Me2NNPPh2)] (6). An X-ray crystal structure of the complex shows the ligand (L2) is bound by both nitrogen atoms. Reaction of the proligands Ph2PNHNR2[R2 = Me2 (L2H), -(CH2CH2)2NCH3 (L3H), (CH2CH2)2CH2 (L4H)] with [{RuCl(mu-Cl)(eta6-p-MeC6H4iPr)}2] gave [RuCl2(eta6-p-MeC6H4iPr)L] {L = L2H (7), L3H (8), L4H (9)}. The X-ray crystal structures of 7-9 confirmed that the phosphinohydrazine ligand is neutral and bound via the phosphorus only. Reaction of complexes 7-9 with AgBF4 resulted in chloride ion abstraction and the formation of the cationic species [RuCl(6-p-MeC6H4iPr)(L)]+ BF4- {(L = L2H (10), L3H (11), L4H (12)}. Finally, reaction of complex 6 with [{RuCl(mu-Cl)(eta6-p-MeC6H4iPr)}2] gave the binuclear species [(eta6-p-MeC6H4iPr)Cl2Ru(mu2,eta3-Ph2PNNMe2)TiCl2(C5H5)], 13.  相似文献   

18.
朱劲波  马立群  梁飞  苗迎春  王立民 《应用化学》2015,32(11):1221-1230
Ti-V基储氢合金在室温、常压下即可表现出良好的储氢特性,且质量储氢容量明显高于传统AB5型储氢合金,从而在氢气的精制和回收、运输和储存及热泵等方面有较早的应用。 此外,在混合气体分离、核反应堆中处理氢的同位素、镍氢电池及燃料电池负极材料等方面也得到了广泛的研究与关注。 基于目前Ti-V基储氢合金的研究现状,概述了该类合金的优势、限制性因素(包括成因)及改性手段。 此外,为了进一步理解Ti-V基合金储氢机理、构建合金组分与储氢特性之间的对应关系,本工作重点围绕Ti-V基储氢合金及其氢化物的结构、组分优化设计展开综述,并对其未来研究方向做出展望。  相似文献   

19.
20.
Selenium dioxide and osmium tetroxide are effective reagents and catalysts for olefin oxidation, although, owing to their toxicity, reservations remain as to their applicability.[1] We are therefore seeking more easily handled metal oxides that are soluble in organic solvents and that are as effective as osmium tetroxide in carrying out stereospecific cis hydroxylation of olefins. The rhenium(VII ) oxide 1 , which has meanwhile become readily accessible, is a favorable candidate.[2]  相似文献   

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