Exchange of comments on identification and quantitation of arsenic species in a dogfish muscle reference material for trace elements
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[1] M. Morita,et al. Speciation of Arsenic by reversed-phase high performance liquid chromatography-inductively coupled plasma mass spectrometry , 1989 .
[2] D. Beauchemin,et al. Identification and quantitation of arsenic species in a dogfish muscle reference material for trace elements. , 1988, Analytical chemistry.
[3] Hideki Yamamoto,et al. Ubiquity of arsenobetaine in marine animals and degradation of arsenobetaine by sedimentary micro‐organisms , 1988 .
[4] M. Morita,et al. Isolation and identification of arseno-lipid from a brown alga, () , 1988 .
[5] B. Hatcher,et al. Examination of the arsenic constituents of the herbivorous marine gastropod Tectus pyramis: Isolation of tetramethylarsonium ion , 1988 .
[6] B. Lau,et al. Identification and confirmation of arsenobetaine and arsenocholine in fish, lobster and shrimp by a combination of fast atom bombardment and tandem mass spectrometry. , 1987, Biomedical & environmental mass spectrometry.
[7] J. Edmonds,et al. Trimethylarsine oxide in estuary catfish (Cnidoglanis macrocephalus) and school whiting (Sillago bassensis) after oral administration of sodium arsenate; and as a natural component of estuary catfish. , 1987, The Science of the total environment.
[8] T. Kaise,et al. The formation of trimethylarsine oxide from arsenobetaine by biodegradation with marine microorganisms , 1987 .
[9] H. Yamanaka,et al. Identification of arsenobetaine and a tetramethylarsonium salt in the clam Meretrix lusoria , 1987 .
[10] M. Morita,et al. Speciation of Arsenic Compounds in Marine Life by High Performance Liquid Chromatography Combined with Inductively Coupled Argon Plasma Atomic Emission Spectrometry , 1987 .
[11] R. Sturgeon,et al. New marine biological reference materials for trace metals , 1987 .
[12] S. Okazaki,et al. Continuous flow two-point titration system for chloride using a pair of silver/sulfide ion selective electrodes , 1986 .
[13] J. F. Lawrence,et al. Identification of arsenobetaine and arsenocholine in Canadian fish and shellfish by high-performance liquid chromatography with atomic absorption detection and confirmation by fast atom bombardment mass spectrometry , 1986 .
[14] J. F. Staden. A coated tubular solid-state chloride-selective electrode in flow-injection analysis , 1986 .
[15] R. Ryhage,et al. Mass fragmentographic estimation of trimethylarsine oxide in aquatic organisms , 1985 .
[16] R. Ryhage,et al. New Evidence for the presence of arsenocholine in shrimps (Pandalus borealis) by use of pyrolysis gas chromatography — atomic absorption spectrometry/mass spectrometry , 1983 .
[17] K. Fuwa,et al. Determination of arsenic compounds in biological samples by liquid chromatography with inductively coupled argon plasma-atomic emission spectrometric detection , 1981 .
[18] P. C. Kearney,et al. Characterization of arsenic compounds formed by Daphnia magna and Tetraselmis chuii from inorganic arsenate. , 1977, Environmental health perspectives.
[19] G. Nagy,et al. A novel titration technique for the analysis of streamed samples—the triangle-programmed titration technique: Part I. General considerations , 1977 .
[20] G. Nagy,et al. A novel titration technique for the analysis of streamed samples—the triangle-programmed titration technique: Part II. Argentimetric titrations , 1977 .
[21] C. Raston,et al. Isolation, crystal structure and synthesis of arsenobetaine, the arsenical constituent of the western rock lobster panulirus longipes cygnus George , 1977 .