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2022

Cao, X., 2022, Diffusional isotope fractionation of singly and doubly substituted isotopologues of H2, N2 and O2 during air-water gas transfer: Geochimica et Cosmochimica Acta, v. 332, p. 78-87.


Kubota, Y., Matsu'ura, F., Shimizu, K., Ishikawa, A., and Ueno, Y., 2022, Sulfur in Archean komatiite implies early subduction of oceanic lithosphere: Earth and Planetary Science Letters, v. 598, p. 117826.

 

Sun, H., Shen, C.-C., Wu, C.-C., Chen, B., Yin, J., Yan, H., Dong, J., An, D., Tang, S., and Zhang, Q., 2022, Subannual-to-biannual-resolved travertine record of Asian Summer Monsoon dynamics in the early Holocene at the eastern margin of Tibetan Plateau: Applied Geochemistry, v. 141, p. 105305.

 

Wei, Y., Yan, H., Liu, Z., Han, C., Ma, S., Sun, H., and Bao, Q., 2022, The ballast effect controls the settling of autochthonous organic carbon in three subtropical karst reservoirs: Science of The Total Environment, v. 818, p. 151736.

 

Yan, H., Peng, Y., and Bao, H., 2022, Isotope fractionation during capillary leaking in an isotope ratio mass spectrometer: Rapid Communications in Mass Spectrometry, v. 36, no. 11, p. e9290.

 

Zhao, M., Sun, H., Liu, Z., Bao, Q., Chen, B., Yang, M., Yan, H., Li, D., He, H., and Wei, Y., 2022, Organic carbon source tracing and the BCP effect in the Yangtze River and the Yellow River: Insights from hydrochemistry, carbon isotope, and lipid biomarker analyses: Science of The Total Environment, v. 812, p. 152429.

 

Akers, P. D., Savarino, J., Caillon, N., Servettaz, A. P. M., Le Meur, E., Magand, O., Martins, J., Agosta, C., Crockford, P., Kobayashi, K., Hattori, S., Curran, M., van Ommen, T., Jong, L., and Roberts, J. L., 2022, Sunlight-driven nitrate loss records Antarctic surface mass balance: Nature Communications, v. 13, no. 1, p. 4274.

 

Baartman, S., Krol, M., Rˆckmann, T., Hattori, S., Kamezaki, K., Yoshida, N., and Popa, M., 2022, A GC-IRMS method for measuring sulfur isotope ratios of carbonyl sulfide from small air samples [version 2; peer review: 2 approved]: Open Research Europe, v. 1, no. 105.

 

Iizuka, Y., Uemura, R., Matsui, H., Oshima, N., Kawakami, K., Hattori, S., Ohno, H., and Matoba, S., 2022, High Flux of Small Sulfate Aerosols During the 1970s Reconstructed From the SE-Dome Ice Core in Greenland: Journal of Geophysical Research: Atmospheres, v. 127, no. 17, p. e2022JD036880.

 

Itahashi, S., Hattori, S., Ito, A., Sadanaga, Y., Yoshida, N., and Matsuki, A., 2022, Role of Dust and Iron Solubility in Sulfate Formation during the Long-Range Transport in East Asia Evidenced by 17O-Excess Signatures: Environmental Science & Technology, v. 56, no. 19, p. 13634-13643.

 

Kantnerová, K., Hattori, S., Toyoda, S., Yoshida, N., Emmenegger, L., Bernasconi, S. M., and Mohn, J., 2022, Clumped isotope signatures of nitrous oxide formed by bacterial denitrification: Geochimica et Cosmochimica Acta, v. 328, p. 120-129.

 

Miyamoto, C., Iizuka, Y., Matoba, S., Hattori, S., and Takahashi, Y., 2022, Gypsum formation from calcite in the atmosphere recorded in aerosol particles transported and trapped in Greenland ice core sample is a signature of secular change of SO2 emission in East Asia: Atmospheric Environment, v. 278, p. 119061.


Gong, S., Izon, G., Peng, Y., Cao, Y., Liang, Q., Peckmann, J., Chen, D., and Feng, D., 2022, Multiple sulfur isotope systematics of pyrite for tracing sulfate-driven anaerobic oxidation of methane: Earth and Planetary Science Letters, v. 597, p. 117827.

 

Han, T., Peng, Y., and Bao, H., 2022, Sulfate-limited euxinic seawater facilitated Paleozoic massively bedded barite deposition: Earth and Planetary Science Letters, v. 582, p. 117419.

 

Li, N., Zhang, F., Gao, J., Cao, M., Wei, G.-Y., Wang, H., Zhang, Z., Cheng, M., Xiong, G., and Zhou, J., 2022, Assessing bulk carbonates as archives for seawater sulfur isotopic composition using shallow water cores from the South China Sea: Palaeogeography, Palaeoclimatology, Palaeoecology, v. 598, p. 111029.

 

Liu, Y., Ding, W., Lang, X., Xing, C., Wang, R., Huang, K., Fu, B., Ma, H., Peng, Y., and Shen, B., 2022, Refining the early Cambrian marine redox profile by using pyrite sulfur and iron isotopes: Global and Planetary Change, v. 213, p. 103817.

 

Ma, H., Shen, B., Lang, X., Peng, Y., Huang, K., Huang, T., Fu, Y., and Tang, W., 2022, Active biogeochemical cycles during the Marinoan global glaciation: Geochimica et Cosmochimica Acta, v. 321, p. 155-169.

 

Peng, Y., Bao, H., Jiang, G., Crockford, P., Feng, D., Xiao, S., Kaufman, A. J., and Wang, J., 2022, A transient peak in marine sulfate after the 635-Ma snowball Earth: Proceedings of the National Academy of Sciences, v. 119, no. 19, p. e2117341119.

 

Yan, H., Peng, Y., and Bao, H., 2022, Isotope fractionation during capillary leaking in an isotope ratio mass spectrometer: Rapid Communications in Mass Spectrometry, v. 36, no. 11, p. e9290.

 

Yang, T., Wang, X., Xu, D., Shi, X., and Peng, Y., 2022, Nitrogen Isotopes from the Neoproterozoic Liulaobei Formation, North China: Implications for Nitrogen Cycling and Eukaryotic Evolution: Journal of Earth Science, v. 33, no. 5, p. 1309-1319.