CUI Huan,GAO Wei-chang,LIU Yan-xia,et al.Determination of Volatile Organic Compounds in PBAT Biodegradable Films by Headspace Solid-phase Microextraction Combined with GC×GC-TOF MS[J].Journal of Instrumental Analysis,2021,40(07):1004-1010.
CUI Huan,GAO Wei-chang,LIU Yan-xia,et al.Determination of Volatile Organic Compounds in PBAT Biodegradable Films by Headspace Solid-phase Microextraction Combined with GC×GC-TOF MS[J].Journal of Instrumental Analysis,2021,40(07):1004-1010. DOI: 10.3969/j.issn.1004-4957.2021.07.004.
Determination of Volatile Organic Compounds in PBAT Biodegradable Films by Headspace Solid-phase Microextraction Combined with GC×GC-TOF MS
A method suitable for qualitative and quantitative analysis was established to determine the main volatile organic compounds(VOCs) in poly(butylene adipate terephthalate)(PBAT) biodegradable films by headspace-solid-phase microextraction(HS-SPME) combined with comprehensive two-dimensional gas chromatography-time-of-flight mass spectrometry(GC × GC-TOF MS). Effects of type of SPME fiber, equilibrium temperature, equilibrium time and extraction time on extraction efficiencies for VOCs in biodegradable films were investigated. The optimal SPME extraction conditions were as follows: polydimethylsiloxane-divinylbenzene-carboxen(PDMS-DVB-CAR) fiber was at 80 ℃ extraction temperature for equilibrium time of 10 min and extraction time of 40 min. Then the fiber was introduced into the GC × GC-TOF MS injector port and the extract was desorbed at 260 ℃ for 3 min. The VOCs were identified using standard mass spectrum databases and structure spectra and quantified by internal standard method. Results indicated that 55 VOCs in the biodegradable film were identified. Compared with one-dimensional GC-MS, GC × GC-TOF MS can effectively separate homologues, isomers, and interfering compounds, and then obtain more accurate quantitative results. The identified compounds can be divided into 9 types according to the compound structure, including: benzenes, naphthalenes, aldehydes and ketones, alcohols, esters, indenes, amines, phenols, others, etc. The intra-day and inter-day precision are both no more than 19% with good repeatability and reproducibility. The 55 VOCs in 4 kinds (A,B,C,D) of PBAT biodegradable films from different manufacturers were analyzed with multivariate statistical analysis. The principal component analysis(PCA) showed that PBAT A+B, PBAT C and PBAT D are obviously different, while PBAT A and PBAT B samples overlap. The PBAT biodegradable films from different manufacturers can be distinguished with VOCs composition, and each biodegradable film has a characteristic difference, The heatmap analysis shows the higher benzene homologues for PBAT D and naphthalene, amines, phenol for PBAT A+B, while lower VOCs for PBAT C. The method of combining HS-SPME and GC × GC-TOF MS has accurate, reliable, simple, rapid advantages and the VOCs results can provide reference value for the safety evaluation and use of PBAT biodegradable film.
关键词
PBAT生物降解膜顶空固相微萃取全二维气相色谱-飞行时间质谱挥发性有机物
Keywords
PBAT biodegradable filmsheadspace solid-phase microextractioncomprehensive two-dimensional gas chromatography-time-of-flight mass spectrometryvolatile organic compounds
references
Xie H E, Li Y S, Yang S Q, Wang J J, Wu X F, Wu Z X. J. Agro-Environ. Sci.(解红娥, 李永山, 杨淑巧, 王娇娟, 吴秀峰, 武宗信. 农业环境科学学报), 2007, 26(增刊): 153-156.
Wu Q, Wang Z H, Zheng X R, Zhang J Z, Li W H. Trans CSAE(邬强, 王振华, 郑旭荣, 张金珠, 李文昊. 农业工程学报), 2017, 33(16): 135-143.
Gewert B, Plassmann M M, MacLeod M. Environ. Sci.: Processes Impacts, 2015, 17: 1513-1521.
Xu Q L, Li C A, Chen M L, Fan Y C. Chin. J. Anal. Lab.(徐钦良, 李长安, 陈梅兰, 范云场. 分析试验室), 2010, 29(6): 93-96.
Cabanes A, Valdés F J, Fullana A. Sustain. Mater. Technol., 2020, 25: e00179.
Yan W F, Guo R, Zhu D, Liu Y, Pei Y C, Jin Z, Cheng F S. J. Chin. Inst. Food Sci. Technol.(阎文飞, 郭瑞, 朱丹, 刘晔, 裴云成, 靳钊, 程凡升. 中国食品学报), 2019, 49(5): 234-242.
Xiang Z M, Cai K, Geng Z L, Zhang J, Zhou S P. Anal. Lett., 2013, 46(4): 640-650.
Cheng Q, Yang F, Li J, Lu S Y, Lan J C, Jiang J B. Chin. J. Chromatogr.(程权, 杨方, 李捷, 卢声宇, 蓝锦昌, 江锦彬. 色谱), 2015, 33(2): 174-181.
Chen H, Wu Y L, Fu X H, Xia Z N. Chin. J. Anal. Chem.(陈华, 吴彦蕾, 傅小红, 夏之宁. 分析化学), 2012, 40(6): 904-908.
Wang J L, Sun C Y, Liu T F. Chin. J. Anal. Lab.(王建玲, 孙春燕, 刘艇飞. 分析试验室), 2015, 34(8): 978-983.
Zhou L L, Xue Q H, Luo X, Xin X Q, Ma Q, Ye X W, Niu Z Y, Sun Z S, Wang Z H. J. Instrum. Anal.(周龙龙, 薛秋红, 罗忻, 辛学谦, 马强, 叶曦雯, 牛增元, 孙忠松, 王子涵. 分析测试学报), 2019, 38(11): 1301-1309.
Curran K, Underhill M, Gibson L T, Strlic M. Microchem. J., 2016, 124: 909-918.
Yang Z J, Zhang W Y, Wang C Y, Xu D Z, Pan K Y, Wu C Y. Chin. J. Chromatogr.(杨左军, 张伟亚, 王成云, 许德珍, 潘坤永, 吴采樱. 色谱), 2003, 21(6): 617-620.
Li Y, Li C F, Chen X H, Liang F, Bai S, Liao W Z, Li Y T, Sun X Y. Plast. Sci. Technol.(李英, 李成发, 陈旭辉, 梁烽, 白爽, 廖文忠, 李泳涛, 孙小颖. 塑料科技), 2014, 42(1): 115-119.
Zhang W Y, Wang C Y, Yang Z J. J. Instrum. Anal.(张伟亚, 王成云, 杨左军. 分析测试学报), 2003, 22(6): 45-47.
Cai K, Xiang Z M, Pan W J, Zhao H N, Ren Z, Lei B, Geng Z L. J. Chromatogr. A, 2013, 1311: 149-156.
Kang K, Chang Y, Choi J C, Park S J, Han J. Anal. Bioanal. Chem., 2018, 83(4): 1005-1010.
Ibarra V G, De Quirós A R B, Losada P P, Sendón R. Anal. Bioanal. Chem., 2018, 410(16): 3789-3803.