Late Holocene glacier variations indicated by the δ^18O of ice core enclosed gaseous oxygen in the central Tibetan Plateau
暂无分享,去创建一个
[1] Yingkui Li,et al. Late Holocene glacier fluctuations in the Bhutanese Himalaya , 2020 .
[2] R. Joyce,et al. 1 Mesoamerica : A Working Model for Archaeology , 2003 .
[3] Liping Zhu,et al. Mid- to late-Holocene paleoenvironmental changes and glacier fluctuations reconstructed from the sediments of proglacial lake Buruo Co, northern Tibetan Plateau , 2019, Palaeogeography, Palaeoclimatology, Palaeoecology.
[4] M. Leuenberger,et al. On the use of δ 18 O atm for ice core dating , 2018 .
[5] C. Schmidt,et al. Dissolved oxygen in water and its stable isotope effects: A review , 2017 .
[6] Baiqing Xu,et al. Long-term glacier melt fluctuations over the past 2500 yr in monsoonal High Asia revealed by radiocarbon-dated lacustrine pollen concentrates , 2017 .
[7] S. Colman,et al. Large Holocene summer temperature oscillations and impact on the peopling of the northeastern Tibetan Plateau , 2016 .
[8] J. Schmitt,et al. Climatic and insolation control on the high-resolution total air content in the NGRIP ice core , 2015 .
[9] Liping Zhu,et al. Climate change on the Tibetan Plateau in response to shifting atmospheric circulation since the LGM , 2015, Scientific Reports.
[10] J. Jouzel,et al. Phase relationships between orbital forcing and the composition of air trapped in Antarctic ice cores , 2015 .
[11] Gerhard Kuhn,et al. Glacier fluctuations of Muztagh Ata and temperature changes during the late Holocene in westernmost Tibetan Plateau, based on glaciolacustrine sediment records , 2014 .
[12] A. Townsend‐Small,et al. Timing and climatic drivers for glaciation across monsoon-influenced regions of the Himalayan-Tibetan orogen , 2014 .
[13] X. Faïn,et al. High-resolution glacial and deglacial record of atmospheric methane by continuous-flow and laser spectrometer analysis along the NEEM ice core , 2013 .
[14] D. Hauglustaine,et al. A new Himalayan ice core CH 4 record: possible hints at the preindustrial latitudinal gradient , 2013 .
[15] J. Jouzel. A brief history of ice core science over the last 50 yr , 2013 .
[16] Bangsen Tian,et al. Monitoring glacier zones and snow/firn line changes in the Qinghai–Tibetan Plateau using C-band SAR imagery , 2013 .
[17] J. Jouzel,et al. Synchronous Change of Atmospheric CO2 and Antarctic Temperature During the Last Deglacial Warming , 2013, Science.
[18] M. Loutre,et al. An optimized multi-proxy, multi-site Antarctic ice and gas orbital chronology (AICC2012): 120--800 ka , 2012 .
[19] Takuro Kobashi,et al. Causes of Greenland temperature variability over the past 4000 yr: implications for northern hemispheric temperature changes , 2012 .
[20] L. Thompson,et al. Different glacier status with atmospheric circulations in Tibetan Plateau and surroundings , 2012 .
[21] P. Clark,et al. Global warming preceded by increasing carbon dioxide concentrations during the last deglaciation , 2012, Nature.
[22] C. Mann,et al. A Practical Treatise on Diseases of the Skin , 1889, Atlanta Medical and Surgical Journal (1884).
[23] E. Barkan,et al. The isotopic composition of atmospheric oxygen , 2011 .
[24] J. Chappellaz,et al. Variations of air content in Dasuopu ice core from AD 1570–1927 and implications fore climate change , 2011 .
[25] E. Vogelsang,et al. Reconstruction of the variability of the southwest monsoon during the past 3 ka, from the continental margin of the southeastern Arabian Sea , 2010 .
[26] T. Yao,et al. Major ions composition records from a shallow ice core on Mt. Tanggula in the central Qinghai-Tibetan Plateau , 2010 .
[27] J. Jouzel,et al. Millennial and sub-millennial scale climatic variations recorded in polar ice cores over the last glacial period , 2010 .
[28] T. Yao,et al. A 70-yr record of oxygen-18 variability in an ice core from the Tanggula Mountains, central Tibetan Plateau , 2010 .
[29] R. Beaudette,et al. Oxygen-18 of O2 Records the Impact of Abrupt Climate Change on the Terrestrial Biosphere , 2009, Science.
[30] Deliang Chen,et al. Annual temperatures during the last 2485 years in the mid-eastern Tibetan Plateau inferred from tree rings , 2009 .
[31] B. Liu,et al. Review of Holocene glacial chronologies based on radiocarbon dating in Tibet and its surrounding mountains , 2008 .
[32] T. Stocker,et al. Orbital and millennial-scale features of atmospheric CH4 over the past 800,000 years , 2008, Nature.
[33] M. Loutre,et al. The local insolation signature of air content in Antarctic ice. A new step toward an absolute dating of ice records , 2007 .
[34] Kenji Kawamura,et al. The EDC3 chronology for the EPICA Dome C ice core , 2007 .
[35] J. Jouzel,et al. Anomalous flow below 2700 m in the EPICA Dome C ice core detected using δ 18 O of atmospheric oxygen measurements , 2007 .
[36] J. Severinghaus,et al. Evidence for molecular size dependent gas fractionation in firn air derived from noble gases, oxygen, and nitrogen measurements , 2006 .
[37] V. Petrenko,et al. Gas records from the West Greenland ice margin covering the Last Glacial Termination: a horizontal ice core , 2005 .
[38] D. Qin,et al. Summer Temperature Trend Over the Past Two Millennia Using Air Content in Himalayan Ice , 2005 .
[39] M. Magny,et al. Glacier and lake-level variations in west-central Europe over the last 3500 years , 2005 .
[40] M. Caffee,et al. Climatic and topographic controls on the style and timing of Late Quaternary glaciation throughout Tibet and the Himalaya defined by 10Be cosmogenic radionuclide surface exposure dating , 2005 .
[41] Michael E. Mann,et al. Climate over past millennia , 2004 .
[42] E. Maier‐Reimer,et al. A model of the Earth's Dole effect , 2004 .
[43] Shi Yafeng,et al. Late Holocene temperature fluctuations on the Tibetan Plateau , 2003 .
[44] Q. Dahe,et al. A 154 a high-resolution ammonium record from the Rongbuk Glacier, north slope of Mt. Qomolangma (Everest), Tibet-Himal region , 2003 .
[45] M. Bender. Orbital tuning chronology for the Vostok climate record supported by trapped gas composition , 2002 .
[46] D. Qin,et al. The effect of postdepositional process on the chemical profiles of snow pits in the percolation zone , 2002 .
[47] Fahu Chen,et al. Abrupt Holocene changes of the Asian monsoon at millennial- and centennial-scales: Evidence from lake sediment document in Minqin Basin, NW China , 2001 .
[48] Bernd Kromer,et al. Persistent Solar Influence on North Atlantic Climate During the Holocene , 2001, Science.
[49] T. Yao,et al. Dasuopu ice core record of atmospheric methane over the past 2000 years , 2001 .
[50] N. Shackleton,et al. The 100,000-year ice-Age cycle identified and found to lag temperature, carbon dioxide, and orbital eccentricity , 2000, Science.
[51] J. Jouzel,et al. The Dole effect over the last two glacial-interglacial cycles , 1999 .
[52] J. Jouzel,et al. Climate and atmospheric history of the past 420,000 years from the Vostok ice core, Antarctica , 1999, Nature.
[53] M. Hughes,et al. Northern hemisphere temperatures during the past millennium: Inferences, uncertainties, and limitations , 1999 .
[54] J. McConnell,et al. Physically based modeling of atmosphere‐to‐snow‐to‐firn transfer of H2O2 at South Pole , 1998 .
[55] J. Severinghaus,et al. Timing of abrupt climate change at the end of the Younger Dryas interval from thermally fractionated gases in polar ice , 1998, Nature.
[56] M. Leuenberger. Modeling the signal transfer of sea water δ18O to the δ18O of atmospheric oxygen using a diagnostic box model for the terrestrial and marine biosphere , 1997 .
[57] Tandong Yao,et al. Climate variation since the Last Interglaciation recorded in the Guliya ice core , 1997 .
[58] T. Sowers,et al. The Dole Effect and its variations during the last 130,000 years as measured in the Vostok Ice Core , 1994 .
[59] P. Sedlák,et al. Photoinitiated reactions of hydrogen peroxide in the liquid phase , 1992 .
[60] Dominique Raynaud,et al. The δ18O of atmospheric O2 from air inclusions in the Vostok Ice Core: Timing of CO2 and ice volume changes during the penultimate deglaciation , 1991 .
[61] D. Raynaud,et al. Elemental and isotopic composition of occluded O2 and N2 in polar ice , 1989 .
[62] H. Craig,et al. Gravitational Separation of Gases and Isotopes in Polar Ice Caps , 1988, Science.
[63] J. Bolzan. Ice flow at the dome C ice divide based on a deep temperature profile , 1985 .
[64] Bruce B. Benson,et al. The concentration and isotopic fractionation of oxygen dissolved in freshwater and seawater in equilibrium with the atmosphere1 , 1984 .
[65] M. Dole,et al. Fractionation of oxygen isotopes during respiration. , 1956, Science.
[66] M. Dole. The Relative Atomic Weight of Oxygen in Water and in Air A Discussion of the Atmospheric Distribution of the Oxygen Isotopes and of the Chemical Standard of Atomic Weights , 1936 .
[67] M. Dole. THE RELATIVE ATOMIC WEIGHT OF OXYGEN IN WATER AND IN AIR , 1935 .
[68] J. Jouzel,et al. What drives the millennial and orbital variations of δ18Oatm , 2010 .
[69] E. Mosley‐Thompson,et al. Holocene climate variability archived in the Puruogangri ice cap on the central Tibetan Plateau , 2006, Annals of Glaciology.
[70] J. Jouzel,et al. Age of Himalayan bottom ice cores , 2004, Journal of Glaciology.
[71] H. Lamb. Climatic history and the future , 1985 .