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Microbial Ecology|November 15, 2013
Nitrogen economy of endolithic microbial communities in hot and cold desertsE I Friedmann, A P KiblerPolarforschung|January 1, 1988
Incorporation of inorganic carbon by Antarctic cryptoendolithic fungiR J Palmer, E I FriedmannPhycologia|January 1, 1984
Hemichloris antarctica, gen. et sp. nov. (Chlorococcales, Chlorophyta), a cryptoendolithic alga from AntarcticaE Tschermak-Woess, E I FriedmannPolar Biology|January 1, 1985
The cryptoendolithic microbial environment in the Antarctic cold desert: temperature variations in natureC P McKay, E I FriedmannAntarctic Science|September 7, 2001
Soil temperatures and stability of ice-cemented ground in the McMurdo Dry Valleys, AntarcticaC McKay, M T Mellon, E I FriedmannMicrobial Ecology|January 1, 1988
The cryptoendolithic microbial environment in the Ross Desert of Antarctica: light in the photosynthetically active regionJ A Nienow, C P McKay, E I FriedmannProceedings of the NIPR Symposium on Antarctic Meteorites. NIPR Symposium on Antarctic Meteorites|October 1, 1995
Geochemical characteristics of organic compounds in a permafrost sediment core sample from northeast Siberia, RussiaG I Matsumoto, E I Friedmann, D A GilichinskyPolar Biology|January 1, 1987
The cryptoendolithic microbial environment in the Ross Desert of Antarctica: satellite-transmitted continuous nanoclimate data, 1984 to 1986E I Friedmann, C P McKay, J A NienowJournal of Microbiological Methods|January 1, 1987
Control of matric water potential by temperature differentialR J Palmer, J A Nienow, E I FriedmannMicrobial Ecology|November 9, 2013
The cryptoendolithic microbial environment in the Ross Desert of Antarctica: Light in the photosynthetically active regionJ A Nienow, C P McKay, E I FriedmannPageof 5