色谱 ›› 2024, Vol. 42 ›› Issue (4): 387-392.DOI: 10.3724/SP.J.1123.2023.08018

• 技术与应用 • 上一篇    下一篇

顶空-气相色谱法测定橄榄油中6种卤化溶剂残留

雷春妮1,*(), 王波1, 顾强2, 张欢1, 张晓美1, 李建科3   

  1. 1.兰州海关技术中心, 甘肃 兰州 730010
    2.张家港海关综合技术中心, 江苏 张家港 215600
    3.陇南市祥宇油橄榄开发有限责任公司, 甘肃 陇南 746000
  • 收稿日期:2023-08-29 出版日期:2024-04-08 发布日期:2024-04-03
  • 通讯作者: Tel:(0931)8515637,E-mail:410004233@qq.com.
  • 基金资助:
    兰州海关科技计划项目(LK-2022-005)

Determination of six halogenated solvent residues in olive oil by headspace gas chromatography

LEI Chunni1,*(), WANG Bo1, GU Qiang2, ZHANG Huan1, ZHANG Xiaomei1, LI Jianke3   

  1. 1. Technology Center of Lanzhou Customs, Lanzhou 730010, China
    2. Comprehensive Technology Center of Zhangjiagang Customs, Zhangjiagang 215600, China
    3. Olive Oil of Longnan Xiang Yu Development Limited Liability Company, Longnan 746000, China
  • Received:2023-08-29 Online:2024-04-08 Published:2024-04-03
  • Supported by:
    Lanzhou Customs Science and Technology Plan Project(LK-2022-005)

摘要:

卤化溶剂残留量是评价橄榄油质量的重要指标之一。国家橄榄油质量标准GB/T 23347-2021中规定了橄榄油中每种卤化溶剂残留量≤0.1 mg/kg、卤化溶剂残留量总和≤0.2 mg/kg,其检验方法是国际油橄榄理事会发布的COI/T.20/Doc. No 8-1990标准方法,该方法操作繁琐、重复性差、自动化程度低,不适于大批量橄榄油样品中卤化溶剂残留量的测定,而目前国家尚未制定橄榄油中卤化溶剂残留量测定的标准方法。该文建立了橄榄油中氯仿、四氯化碳、1,1,1-三氯乙烷、二溴氯甲烷、四氯乙烯和溴仿6种卤化溶剂残留量的顶空-气相色谱法。将橄榄油试样摇匀后,称取2.00 g(精确至0.01 g)于顶空瓶中,立即封盖待顶空-气相色谱仪分析,采用空白初榨橄榄油配制标准工作液,外标法定量。考察了顶空进样器的进样时间、平衡温度、平衡时间对6种卤化溶剂残留量检测的影响,在进样时间3 s、平衡温度90 ℃、平衡时间30 min时6种卤化溶剂的分析效果较好。结果表明:6种卤化溶剂在0.002~0.200 mg/kg范围内线性关系良好,相关系数≥0.9991,检出限为0.0003~0.0006 mg/kg,定量限为0.001~0.002 mg/kg,不同加标水平下的平均回收率为85.53%~115.93%,相对标准偏差(n=6)为1.11%~8.48%。该方法的6种卤化溶剂定量限显著低于COI/T.20/Doc. No 8-1990标准方法的定量限(0.02 mg/kg),且操作时间短,精密度高,准确性好,自动化程度高,适合大批量橄榄油样品中6种卤化溶剂残留量的测定分析。

关键词: 顶空-气相色谱法, 卤化溶剂残留, 橄榄油

Abstract:

The residual amount of halogenated solvents in olive oil is an important indicator of its quality. The National Olive Oil Quality Standard GB/T 23347-2021 states that the residual amount of individual halogenated solvents in olive oil should be ≤0.1 mg/kg and that the total residual amount of halogenated solvents should be ≤0.2 mg/kg. COI/T.20/Doc. No. 8-1990, which was published by the International Olive Council, describes the standard method used for the determination of halogenated solvents in olive oil. Unfortunately, this method is cumbersome, has poor repeatability and low automation, and is unsuitable for the detection and analysis of residual halogenated solvents in large quantities of olive oil. At present, no national standard method for determining residual halogenated solvents in olive oil is available in China. Thus, developing simple, efficient, accurate, and stable methods for the determination of residual halogenated solvents in olive oil is imperative. In this paper, a method based on automatic headspace gas chromatography was established for the determination of residual halogenated solvents, namely, chloroform, carbon tetrachloride, 1,1,1-trichloroethane, dibromochloromethane, tetrachloroethylene, and bromoform, in olive oil. The samples were processed as follows. After mixing, 2.00 g (accurate to 0.01 g) of the olive oil sample was added into a 20 mL headspace injection bottle and immediately sealed for headspace gas chromatography analysis. Blank virgin olive oil was used to prepare a standard working solution and the external standard method for quantification. The solvents used in the preparation of halogenated solvent standard intermediates were investigated and methanol was selected as a replacement for N,N-dimethylacetamide to prepare a halogenated solvent standard intermediate owing to its safety. The effects of different injection times (1, 2, 3, 4, 5, 6 s), equilibration temperatures (60, 70, 80, 90, 100, 110, 120 ℃), and equilibration times (4, 5, 8, 10, 20, 30, 40 min) of the headspace sampler on the detection of the residual amounts of the six halogenated solvents were investigated. The optimal injection time and equilibration temperature were 3 s and 90 ℃, respectively. The method demonstrated good analytical performance for the six halogenated solvents when the equilibration time was 30 min. A methodological study was conducted on the optimized method, and the results showed that the six halogenated solvents exhibited good linear relationships in the range of 0.002-0.200 mg/kg, with correlation coefficients of ≥0.9991. The limits of detection (LODs) and quantification (LOQs) of 1,1,1-trichloroethane and bromoform were 0.0006 and 0.002 mg/kg, respectively. The LODs and LOQs of chloroform, carbon tetrachloride, dibromochloromethane, and tetrachloroethylene were 0.0003 and 0.001 mg/kg, respectively. The average recoveries under different spiked levels were 85.53%-115.93%, and the relative standard deviations (n=6) were 1.11%-8.48%. The established method was used to analyze 13 olive oil samples available in the market. Although no halogenated solvents were detected in these samples, a limited number of samples does not represent all olive oils. Hence, monitoring residual halogenated solvents in olive oil remains necessary for its safe consumption. The LOQs of the method for the six halogenated solvents were significantly lower than that of the COI/T.20/Doc. No. 8-1990 standard method (0.02 mg/kg). In addition, the developed method can be conducted under short operation times with high precision and degree of automation as well as good accuracy. Thus, the proposed method is suitable for the determination and analysis of the residues of the six halogenated solvents in large batches of olive oil samples.

Key words: headspace gas chromatography (HS-GC), halogenated solvent residues, olive oil

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