188
J. W.Morse
Hoehler TM, Alperin PI, Albert DB, Martens CS (1994) Field and laboratory studies of methane oxidation in an anoxic marine sediment: Evidence for a methanogen-sulfate reducer consortium. Global
Biogeochem Cycles 8:451-463
Huerta-Diaz MA, Morse JW (1990) A quantitative method for determination of trace metal concentration in sedimentary pyrite. Mar Chern 29:119-144
Huerta-Diaz MA,Morse JW (1992) The pyritization of trace metals in anoxic marine sediments. Geochim
Cosmochim Acta 56:2681-2702
Jorgensen BB (1978) A comparison of methods for the quantification of bacterial sulfate reduction in
coastal marine sediments. 1. Measurement with radiotracer techniques. J Geomicrobiol1:11-27
Jorgensen BB (1990) The thiosulfate shunt in the sulfur cycle of marine sediments. Science 249:152-154
KrauskopfK B (1956) Factors controlling the concentrations of thirteen rare metals in sea-water. Geochim
Cosmochim Acta 9:1-32
Ku TCW, Walter LM, Coleman ML, Blake RE, Martini AM (1999) Coupling between sulfur recycling and
syndepositional carbonate dissolution: Evidence from oxygen and sulfur isotope composition of pore
water sulfate, South Florida Platform, USA. Geochim Cosmochim Acta 63:2529-2546
Lee BG, Groscom SB, Lee JS, Choi HJ, Koh CH, Luoma SN, Fisher NS (2000) Influences of dietary uptake
and reactive sulfides on metal bioavailability from aquatic sediments. Science 287:282-284
Lin S, Morse JW (1991) Sulfate reduction and iron sulfide mineral formation in Gulf of Mexico anoxic
sediments. Am J Sci 291:55-89
Lord CJ III (1982) A selective and precise method for pyrite determination in sedimentary materials.
J Sed Petrol 52:664-666
Luther GW III (1991) Pyrite synthesis via polysulfide compounds. Geochim Cosmochim Acta
55:2839-2849
Manheim FT (1961) A geochemical profile in the Baltic Sea. Geochim CosmoclJim Acta 25:52-70
Milliman JD (1993) Production and accumulation of calcium carbonate in the ocean: Budget of a
nonsteady state. Global Biogeochem Cycles 7:927-957
Morse JW (1994) Interactions of trace metals with authigenic sulfide minerals: Implications for their
bioavailability. Mar Chern 46:1-6
Morse JW, Berner, RA (1995) What controls sedimentary CIS ratios? Geochim Cosmochim Acta
59:1073-1077
Morse JW, Cornwell JC (1987) Analysis and distribution of iron sulfide minerals in recent anoxic marine sediments. Mar Chern 22:55-69
Morse JW, Emeis KC (1990) Controls on CIS ratios in hemipelagic sediments. Am J Sci 290:1117-1135
Morse JW, Luther GW III (1999) Chemical influences on trace metal-sulfide interactions in anoxic
sediments. Geochim Cosmochim Acta 63:3373-3379
Morse JW, Mackenzie FT (1990) Geochemistry of sedimentary carbonates. Elsevier, Amsterdam
Morse JW, Zullig JJ, Bernstein LD, Millero FJ, Milne P, Mucci A, Choppin GR (1985) Chemistry of calcium
carbonate-rich shallow water sediments in the Bal!amas. Am J Sci 285:147-185
Morse JW, Millero FJ, Cornwell J, Rickard D (1987) The chemistry of the hydrogen sulfide and iron sulfide
systems in natural waters. Earth-Sci Rev 24:1-42
Morse JW, Cornwell, JC, Arakaki T, Lin S, Huerta-Diaz MA (1992) Iron sulfide and carbonate mineral
diagenesis in Baffin Bay, Texas. J Sed Petrol 62:671-680
Morse JW, Presley BJ, Taylor RJ, Benoit G, Santschi P (1993) Trace metal chemistry of Galveston Bay:
Water, sediments and biota. Mar Environ Res 36:1-37
Pamatmat M (1971) Oxygen consumption by the seabed. IV. Shipboard and laboratory measurements.
Limnol Oceanogr 16:536-550
Pyzik AJ, Summer JE (1981) Sedimentary iron monosulfides: Kinetics and mechanism of formation.
Geochim Cosmochim Acta 45:687-698
Raiswell R, Berner RA (1986) Pyrite and organic matter in Phanerozoic normal marine shales. Geochim
Cosmochim Acta 50:1967-1976
Redfield AC, Ketchum BH, Rickard FA (1963) The influence of organisms on the composition of seawater.
In: Hill MN (ed) The Sea, vol II. John Wiley and Sons, NewYork,pp 27-77
Rickard DT (1975) Kinetics and meclJanism of pyrite formation at low temperatures. Am J Sci 275:636-652
Rickard DT (1997) Kinetics of pyrite formation by the H2S oxidation of iron (II) mono sulfide in aqueous solutions between 25°C and 125°C: The rate equation. Geochim Cosmochim Acta 61:115-134
Rickard DT, Luther GW III (1997) Kinetics of pyrite formation by the H2S oxidation of iron(II)
mono sulfide in aqueous solutions between 25°C and 125 DC: The mechanism. Geochim Cosmochim
Acta 61:135-147
Rickard DT, Schoonen MAA, Luther GW III (1995) Chemistry of iron sulfides in sedimentary environments. In: Vairavamurthy MA, Shoonen MAA (eds) Geochemical transformations of sedimentary
sulfur. ACS Press, Washington, D.C. (ACS Symp. Ser 162, pp 168-193)
Stumm W, Morgan JJ (1996) Aquatic geochemistry. John Wiley and Sons, New York
J. W.Morse
Hoehler TM, Alperin PI, Albert DB, Martens CS (1994) Field and laboratory studies of methane oxidation in an anoxic marine sediment: Evidence for a methanogen-sulfate reducer consortium. Global
Biogeochem Cycles 8:451-463
Huerta-Diaz MA, Morse JW (1990) A quantitative method for determination of trace metal concentration in sedimentary pyrite. Mar Chern 29:119-144
Huerta-Diaz MA,Morse JW (1992) The pyritization of trace metals in anoxic marine sediments. Geochim
Cosmochim Acta 56:2681-2702
Jorgensen BB (1978) A comparison of methods for the quantification of bacterial sulfate reduction in
coastal marine sediments. 1. Measurement with radiotracer techniques. J Geomicrobiol1:11-27
Jorgensen BB (1990) The thiosulfate shunt in the sulfur cycle of marine sediments. Science 249:152-154
KrauskopfK B (1956) Factors controlling the concentrations of thirteen rare metals in sea-water. Geochim
Cosmochim Acta 9:1-32
Ku TCW, Walter LM, Coleman ML, Blake RE, Martini AM (1999) Coupling between sulfur recycling and
syndepositional carbonate dissolution: Evidence from oxygen and sulfur isotope composition of pore
water sulfate, South Florida Platform, USA. Geochim Cosmochim Acta 63:2529-2546
Lee BG, Groscom SB, Lee JS, Choi HJ, Koh CH, Luoma SN, Fisher NS (2000) Influences of dietary uptake
and reactive sulfides on metal bioavailability from aquatic sediments. Science 287:282-284
Lin S, Morse JW (1991) Sulfate reduction and iron sulfide mineral formation in Gulf of Mexico anoxic
sediments. Am J Sci 291:55-89
Lord CJ III (1982) A selective and precise method for pyrite determination in sedimentary materials.
J Sed Petrol 52:664-666
Luther GW III (1991) Pyrite synthesis via polysulfide compounds. Geochim Cosmochim Acta
55:2839-2849
Manheim FT (1961) A geochemical profile in the Baltic Sea. Geochim CosmoclJim Acta 25:52-70
Milliman JD (1993) Production and accumulation of calcium carbonate in the ocean: Budget of a
nonsteady state. Global Biogeochem Cycles 7:927-957
Morse JW (1994) Interactions of trace metals with authigenic sulfide minerals: Implications for their
bioavailability. Mar Chern 46:1-6
Morse JW, Berner, RA (1995) What controls sedimentary CIS ratios? Geochim Cosmochim Acta
59:1073-1077
Morse JW, Cornwell JC (1987) Analysis and distribution of iron sulfide minerals in recent anoxic marine sediments. Mar Chern 22:55-69
Morse JW, Emeis KC (1990) Controls on CIS ratios in hemipelagic sediments. Am J Sci 290:1117-1135
Morse JW, Luther GW III (1999) Chemical influences on trace metal-sulfide interactions in anoxic
sediments. Geochim Cosmochim Acta 63:3373-3379
Morse JW, Mackenzie FT (1990) Geochemistry of sedimentary carbonates. Elsevier, Amsterdam
Morse JW, Zullig JJ, Bernstein LD, Millero FJ, Milne P, Mucci A, Choppin GR (1985) Chemistry of calcium
carbonate-rich shallow water sediments in the Bal!amas. Am J Sci 285:147-185
Morse JW, Millero FJ, Cornwell J, Rickard D (1987) The chemistry of the hydrogen sulfide and iron sulfide
systems in natural waters. Earth-Sci Rev 24:1-42
Morse JW, Cornwell, JC, Arakaki T, Lin S, Huerta-Diaz MA (1992) Iron sulfide and carbonate mineral
diagenesis in Baffin Bay, Texas. J Sed Petrol 62:671-680
Morse JW, Presley BJ, Taylor RJ, Benoit G, Santschi P (1993) Trace metal chemistry of Galveston Bay:
Water, sediments and biota. Mar Environ Res 36:1-37
Pamatmat M (1971) Oxygen consumption by the seabed. IV. Shipboard and laboratory measurements.
Limnol Oceanogr 16:536-550
Pyzik AJ, Summer JE (1981) Sedimentary iron monosulfides: Kinetics and mechanism of formation.
Geochim Cosmochim Acta 45:687-698
Raiswell R, Berner RA (1986) Pyrite and organic matter in Phanerozoic normal marine shales. Geochim
Cosmochim Acta 50:1967-1976
Redfield AC, Ketchum BH, Rickard FA (1963) The influence of organisms on the composition of seawater.
In: Hill MN (ed) The Sea, vol II. John Wiley and Sons, NewYork,pp 27-77
Rickard DT (1975) Kinetics and meclJanism of pyrite formation at low temperatures. Am J Sci 275:636-652
Rickard DT (1997) Kinetics of pyrite formation by the H2S oxidation of iron (II) mono sulfide in aqueous solutions between 25°C and 125°C: The rate equation. Geochim Cosmochim Acta 61:115-134
Rickard DT, Luther GW III (1997) Kinetics of pyrite formation by the H2S oxidation of iron(II)
mono sulfide in aqueous solutions between 25°C and 125 DC: The mechanism. Geochim Cosmochim
Acta 61:135-147
Rickard DT, Schoonen MAA, Luther GW III (1995) Chemistry of iron sulfides in sedimentary environments. In: Vairavamurthy MA, Shoonen MAA (eds) Geochemical transformations of sedimentary
sulfur. ACS Press, Washington, D.C. (ACS Symp. Ser 162, pp 168-193)
Stumm W, Morgan JJ (1996) Aquatic geochemistry. John Wiley and Sons, New York
