[1] KIM Y, HUANG W, ZHU H, et al. Spontaneous sourdough processing of Chinese Northern-style steamed breads and their volatile compounds[J]. Food Chemistry, 2009, 114(2): 685-692.
[2] 李里特,薛佳.论传统小麦面食的现代化与工业化[J].粮食与食品工业,2010,17(5):7-10.
[3] 刘晓真.我国面制主食产业化的现状及趋势分析[J].粮食加工,2014,39(6):1-5.
[4] 滕超,曲玲玉,孙伟哲,等.传统馒头发酵剂的研究进展[J].食品研究与开发,2015,36(11):1-5.
[5] ZHU F. Influence of ingredients and chemical components on the quality of Chinese steamed bread[J]. Food Chemistry, 2014, 163: 154-162.
[6] 张国华,何国庆.我国传统馒头发酵剂的研究现状[J].中国食品学报,2012,12(11):115-120.
[7] 刘晨,孙庆申,吴桐,等.3种不同发酵剂馒头风味物质比较分析[J].食品科学,2015,36(10):150-153.
[8] WU C, LIU R, HUANG W, et al. Effect of sourdough fermentation on the quality of Chinese Northern-style steamed breads[J]. Journal of Cereal Science, 2012, 56(2): 127-133.
[9] PETEL C, ONNO B, PROST C. Sourdough volatile compounds and their contribution to bread: A review[J]. Trends in Food Science and Technology, 2016, 59: 105-123.
[10] SIEPMANN F B, RIPARI V, WASZCZYNSKYJ N, et al. Overview of sourdough technology: From Production to marketing[J]. Food and Bioprocess Technology, 2018, 11(2): 242-270.
[11] 冷进松,戴媛,朱珠,等.乳清粉-玉米酵子馒头生产配方的优化设计[J].食品研究与开发,2014,35(2):57-63.
[12] LIU T, LI Y, SADIQ F A, et al. Predominant yeasts in Chinese traditional sourdough and their influence on aroma formation in Chinese steamed bread[J]. Food Chemistry, 2018, 242: 404-411.
[13] ZHANG J, LIU W, SUN Z, et al. Diversity of lactic acid bacteria and yeasts in traditional sourdoughs collected from western region in Inner Mongolia of China[J]. Food Control, 2011, 22(5): 767-774.
[14] LIU T, LI Y, CHEN J, et al. Prevalence and diversity of lactic acid bacteria in Chinese traditional sourdough revealed by culture dependent and pyrosequencing approaches[J]. LWT-Food Science and Technology, 2016, 68: 91-97.
[15] 杨敬雨,刘长虹.中国传统酵子的工业化[J].食品研究与开发,2007,28(2):164-166.
[16] 胡丽花,苏东民,苏东海,等.同时蒸馏萃取与固相微萃取法提取馒头中挥发性物质[J].中国农学通报,2010,26(17):98-102.
[17] ZHANG G H, WU T, SADIQ F A, et al. A study revealing the key aroma compounds of steamed bread made by Chinese traditional sourdough[J]. Journal of Zhejiang University-Science B, 2016, 17(10): 787-97.
[18] 张国华.不同地区传统面食发酵剂中菌群结构及优势菌种代谢的研究[D].杭州:浙江大学,2014:97-111.
[19] 王大一.传统发酵剂中主要菌群对馒头风味的影响[D].郑州:河南工业大学,2016:25-32.
[20] 程晓燕,孙银凤,刘娜,等.传统酸面团中植物乳杆菌发酵馒头抗氧化特性及挥发性风味物质特征[J].食品科学,2015,36(12):87-92.
[21] 刘娜,程晓燕,孙银凤,等.GC-MS分析传统酸面团馒头风味及添加食用碱对其风味的影响[J].食品工业科技,2014,35(16):76-81.
[22] 马凯,华威,龚平,等.顶空-固相微萃取方法分析4种发酵剂制作馒头中挥发性风味物质[J].食品科学,2014,35(16):128-132.
[23] 樊元元.酵子面糊发酵对馒头品质特性影响的研究[D].郑州:河南工业大学,2016:75-80.
[24] 闫瑛楠.麸皮酵子的制作工艺及其在馒头中的应用研究[D].郑州:河南工业大学,2015:49-54.
[25] 王宁,卞科,关二旗.干酵母与传统酵子发酵馒头风味物质的对比[J].粮食与饲料工业,2015(12):40-44.
[26] 何晓赟.乳酸菌发酵类型对老酵馒头风味特性的影响[D].无锡:江南大学,2016:23-29.
[27] 邓璀,李志建,刘长虹,等.顶空固相微萃取-气质联用分析酵子发酵面团挥发性风味物质[J].食品科技,2015,40(11):124-30.
[28] 付娜,王锡昌,杜毅,等.传统酵子中产香酵母菌的分离·鉴定及发酵香气的检测[J].安徽农业科学,2016,44(32):89-91.
[29] 宋佳锟.乳酸菌发酵对于老面性质及馒头品质的影响[D].无锡:江南大学,2015:25-28.
[30] 徐会勤.不同粉流对传统主食馒头品质特性影响研究[D].郑州:河南工业大学,2015:45-59.
[31] 苏东海,李自红,苏东民,等.固相微萃取分析传统老酵头馒头挥发性物质[J].食品研究与开发,2011,32(6):94-97.
[32] 宋琛琛.面粉加工精度对传统风味馒头制作品质影响[D].郑州:河南工业大学,2016:33-45.
[33] 王才才,王晓曦,马森,等.小麦粉出粉率对馒头品质及挥发性物质的影响[J].现代食品科技,2016,32(10):167-174;210.
[34] 燕雯,张正茂,刘拉平.顶空固相微萃取-气质联用分析小麦馒头制作过程中的挥发性成分变化[J].食品科学,2012,33(12):254-258.
[35] 邓璀.传统发酵剂中酵母多样性及其在馒头制作中的应用研究[D].郑州:河南工业大学,2016:51-52.
[36] BALASUBRAMANIAN S, PANIGRAHI S. Solid-phase microextraction (SPME) techniques for quality characterization of food products: A review[J]. Food and Bioprocess Technology, 2011, 4(1): 1-26.
[37] CARRASCO A, TOMAS V, TUDELA J, et al. Comparative study of GC-MS characterization, antioxidant activity and hyaluronidase inhibition of different species of Lavandula and Thymus essential oils[J]. Flavour and Fragrance Journal, 2016, 31(1): 57-69.
[38] KIVRAK S. Essential oil composition and antioxidant activities of eight cultivars of Lavender and Lavandin from western Anatolia[J]. Industrial Crops and Products, 2018, 117: 88-96.
[39] KNOTT M, LOUW S, KANDJENGO L. Gas chromatography-mass spectrometry (GC-MS) combined with retention index prediction for the rapid identification of halogenated monoterpenes from a Namibian plocamium species[J]. Natural Product Communications, 2016, 12(2): 207-211.
[40] FIOCCO D, ARCIULI M, ARENA M P, et al. Chemical composition and the anti-melanogenic potential of different essential oils[J]. Flavour and Fragrance Journal, 2016, 31(3): 255-261.
[41] BICCHI C, CHAINTREAU A, JOULAIN D. Identification of flavour and fragrance constituents[J]. Flavour and Fragrance Journal, 2018, 33(3): 201-202.
[42] MAYR C M, CAPONE D L, PARDON K H, et al. Quantitative Analysis by GC-MS/MS of 18 aroma compounds related to oxidative off-flavor in wines[J]. Journal of Agricultural and Food Chemistry, 2015, 63(13): 3 394-3 401.
[43] PIRI-MOGHADAM H, ALAM M N, PAWLISZYN J. Review of geometries and coating materials in solid phase microextraction: Opportunities, limitations, and future perspectives[J]. Analytica Chimica Acta, 2017, 984: 42-65.
[44] CARLO B, ERICA L, MAURA M, et al. Quantitative analysis of essential oils: A complex task[J]. Flavourand Fragrance Journal, 2008, 23(6): 382-391.
[45] PAOLINI J, BARBONI T, DESJOBERT J M, et al. Chemical composition, intraspecies variation and seasonal variation in essential oils of Calendula arvensis L[J]. Biochemical Systematics and Ecology, 2010, 38(5): 865-874.
[46] BARBA C, BENO N, GUICHARD E, et al. Selecting odorant compounds to enhance sweet flavor perception by gas chromatography/olfactometry-associated taste (GC/O-AT)[J]. Food Chemistry, 2018, 257: 172-181.
[47] RAMIREZ J, GILARDONI G, JACOME M, et al. Chemical composition, enantiomeric analysis, AEDA sensorial evaluation and antifungal activity of the essential oil from the ecuadorian plant Lepechinia mutica Benth (Lamiaceae)[J]. Chemistry and Biodiversity, 2017, 14(12): e1700292.
[48] BARBARA R, AUR LIE G, JULIEN D, et al. On-line dynamic HS-SPME for monitoring endogenous aroma compounds released during the baking of amodel cake[J]. Food Chemistry, 2009, 112(1): 9-17.