Detection and determination of aromatic amines as products of reductive splitting from selected azo dyes

被引:156
|
作者
Pielesz, A
Baranowska, I
Rybak, A
Wlochowicz, A
机构
[1] Univ Bielsko Biala, Fac Text Engn & Environm Protect, Bielsko Biala, Poland
[2] Silesian Tech Univ, Dept Analyt & Gen Chem, Gliwice, Poland
关键词
azo dye; aromatic amines; spectrophotometric method; HPLC;
D O I
10.1006/eesa.2002.2191
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The current environment-friendly regulations concerning textile products ban the marketing of textiles dyed with azo dyes capable of reductively splitting carcinogenic aromatic amines. The study analyzes seven azo dyes whose chemical structure determines various quantities of splitting aromatic amines, such as benzidine. For tests, seven commercially available azo dyes with aromatic amines in their structure were selected. These included two hazardous dyes: Acid Red 85 and Direct Blue 6, both capable of reductively splitting carcinogenic benzidine. Of the remaining five azo dyes, three-Ponceau SS, Sudan II, and Disperse Yellow 7-are capable of splitting p-phenylenediamine and aniline, while Mordant Orange 1 and Disperse Orange 3 can split only p-phenylenediamine. For Acid Red 85 and Direct Blue 6, the quantity of benzidine split from them was analyzed, depending on the conditions of the reduction process (e.g., in the HPLC method, 104 g/kg of dye for reduction in NaOH, and 41 g/kg of dye for reduction in acetate buffer). The spectrophotometric method proved useful for preliminary analysis of amine content in examined samples. Spectrophotometric analysis may be used to determine the total content of amines counted as aniline. A full qualitative and quantitative analysis of amines released from azo dyes is possible using high-performance liquid chromatography (HPLC). (C) 2002 Elsevier Science (USA).
引用
收藏
页码:42 / 47
页数:6
相关论文
共 50 条
  • [21] Microbial conversion of selected azo dyes and their breakdown products
    Yemashova, N.
    Kalyuzhnyi, S.
    WATER SCIENCE AND TECHNOLOGY, 2006, 53 (11) : 163 - 171
  • [22] .5. PHARMACODYNAMICS OF CARCINOGENIC AZO DYES, AROMATIC AMINES, AND NITROSAMINES
    WEISBURGER, JH
    WEISBURGER, EK
    CLINICAL PHARMACOLOGY & THERAPEUTICS, 1963, 4 (01) : 110 - &
  • [23] Simultaneous Determination of Harmful Aromatic Amine Products of Azo Dyes by Gas Chromatography–Mass Spectrometry
    Buse Tuğba Dotse Selali Chormey
    Esra Zaman
    Çağdaş Maltepe
    Ayşe Evrim Büyükpınar
    Fatma Bulgurcuoğlu
    Fatih Ahmet Turak
    Sezgin Erulaş
    Journal of Analytical Chemistry, 2020, 75 : 1330 - 1334
  • [24] AROMATIC DIAZOCOMPOUNDS .12. IDENTIFICATION OF PRIMARY AROMATIC AMINES FROM THE ABSORPTION SPECTRA OF DERIVED AZO DYES
    ALLAN, ZJ
    MUZIK, F
    COLLECTION OF CZECHOSLOVAK CHEMICAL COMMUNICATIONS, 1953, 18 (05) : 663 - 678
  • [25] Toxicity of non-regulated aromatic amines from azo dyes in textiles: knowns and unknowns
    Brueschweiler, Beat J.
    TOXICOLOGY LETTERS, 2013, 221 : S54 - S54
  • [26] DETERMINATION OF FREE AROMATIC-AMINES IN SULFUR DYES
    BOUZAN, MCG
    CERECEDA, RC
    ROSELL, MC
    AFINIDAD, 1987, 44 (408) : 111 - 114
  • [27] METABOLITES OF CARCINOGENIC AROMATIC AMINES AND AZO DYES AS METAL ION COMPLEXING AGENTS
    WEISBURGER, JH
    GRANTHAM, PH
    WEISBURGER, EK
    FEDERATION PROCEEDINGS, 1960, 19 (01) : 398 - 398
  • [28] RAPID ULTRASOUND ASSISTED REDUCTION OF AZO DYES FOR SCREENING BANNED AROMATIC AMINES
    Dewani, Rajkumar
    Ahmed, Farman
    Rasheed, Munawwer
    Pervez, Muhammad Kashif
    Wahab, Muhammad Farooq
    Ayaz, Tahira
    STUDIA UNIVERSITATIS BABES-BOLYAI CHEMIA, 2018, 63 (01): : 157 - 175
  • [29] The effect of perspiration on photo-induced chemical reaction of azo dyes and the determination of aromatic amine products
    Li, Haiyan
    Xiong, Zhongduo
    Dai, Xibin
    Zeng, Qinqfu
    DYES AND PIGMENTS, 2012, 94 (01) : 55 - 59
  • [30] Biodegradation of Environmentally Hazardous Azo Dyes and Aromatic Amines Using Klebsiella pneumoniae
    Dixit, Shweta
    Garg, Sanjeev
    JOURNAL OF ENVIRONMENTAL ENGINEERING, 2018, 144 (06)