[1] Yuan H L, Gao S, Liu X M, et al. Accurate U-Pb age and trace element determinations of zircon by laser ablation-inductively coupled plasma mass spectrometry[J]. Geostandards Newsletter, 2004, 28(3):353-370.
[2] 柳小明, 高山, 第五春荣, 等. 单颗粒锆石的20μm小斑束原位微区LA-ICP-MS U-Pb年龄和微量元素的同时测定[J]. 科学通报, 2007, 52(2):228-235. Liu Xiaoming, Gao Shan, Diwu Chunrong, et al. Simultaneous in-situ determination of U-Pb age and trace elements in zircon by LA-ICPMS in 20μm spot size[J]. Chinese Science Bulletin, 2007, 52(9):1257-1264.
[3] 吴元保, 郑永飞. 锆石成因矿物学研究及其对U-Pb年龄解释的制约[J]. 科学通报, 2004, 49(16):1589-1604. Wu Yuanbao, Zheng Yongfei. Genesis of zircon and its constraints on interpretation of U-Pb age[J]. Chinese Science Bulletin, 2004, 49(15):1554-1569.
[4] 周建雄, 陈振宇. 电子针探下锆石阴极发光研究[M]. 成都:电子科技大学出版社, 2010:1-104. Zhou Jianxiong, Chen Zhenyu. Study on cathodoluminescence of zircon by electron probe[M]. Chengdu:Electronic Science and Technology University Press, 2010:1-104.
[5] Crofu F, Hanchar J M, Hoskin P W O,et al. Atlas of zircon textures[J]. Reviews in Mineralogy and Geochemistry, 2003, 53(1):469-495.
[6] Maas R, Kinny P D, Williams I S, et al. The earth's oldest known crust:a geochronological and geochemical study of 3900-4200 Ma old detrital zircons from Mt. Narryer and Jack Hills, Western Australia[J]. Geochimica et Cosmochimica Acta, 1992, 56(3):1281-1300.
[7] Belousova E A, Griffin W L, Reilly S Y, et al. Igneous zircon:trace element composition as an indicator of source rock type[J]. Contributions to Mineralogy and Petrology, 2002, 143(5):602-622.
[8] Kinny P D, Wijbrans J R, Froude D O, et al. Age constraints on the geological evolution of the Narryer Gneiss Complex, Western Australia[J]. Australian Journal of Earth Sciences, 1990, 37(1):51-69.
[9] Rubatto D. Zircon trace element geochemistry:Partitioning with garnet and the link between U-Pb ages and metamorphism[J]. Chemical Geology, 2002, 184(1):123-138
[10] Hinton R W, Upton B G J. The chemistry of zircon:variations within and between large crystals from syenite and alkali basalt xenoliths[J]. Geochimica et Cosmochimica Acta, 1991, 55(11):3287-3302.
[11] Belousova E A, Griffin W L, Pearson N J. Trace element composition and catholuminescence properties of Southern African kimberlitic zircons[J]. Mineralogical Magazine, 1998, 62(3):355-366.
[12] Schaltegger U, Fanning C M, Gnther D, et al. Growth, annealing and recrystallization of zircon and preservation of monazite in high grade metamorphism:Conventional and in-situ U-Pb isotope, cathodoluminescence and micro chemical Evidence[J]. Contributions to Mineralogy and Petrology, 1999, 134(2-3):186-201.
[13] Whitehouse M J, Platt J P. Dating high-grade metamorphism-constraints from rare-earth elements in zircon and garnet[J]. Contributions to Mineralogy and Petrology, 2003, 145(1):61-74.
[14] Hoskin P W O, Ireland T R. Rare earth element chemistry of zircon and its use as a provenance indicator[J]. Geology, 2000, 28(7):627-630.
[15] Hoskin P W O, Schaltegger U. The composition of zircon and igneous and metamorphic petrogenesis[J]. Reviews in Mineralogy & Geochemistry, 2003, 53(1):27-62
[16] Bingen B, Austrheim H, Whitehouse M J, et al. Trace element signature and U-Pb geochronology of eclogite-facies zircon, Bergen Arcs, Caledonides of W Norway[J]. Contributions to Mineralogy and Petrology, 2004, 147(6):671-683.
[17] Grant M L, Wilde S A, Wu F, et al. The application of zircon cathodoluminescence imaging, Th-U-Pb chemistry and U-Pb ages in interpreting discrete magmatic and high-grade metamorphic events in the North China Craton at the Archean/Proterozoic boundary[J]. Chemical Geology, 2009, 261(1):155-171.
[18] Iizuka T, Horie K, Komiya T, et al. 4.2 Ga zircon xenocryst in an Acasta gneiss from northwestern Canada:Evidence for early continental crust[J]. Geology, 2006, 34(4):245-248.
[19] Xia Q X, Zheng Y F. Trace elements in zircon and coexisting minerals from low-T/UHP metagranite in the Dabie orogen:Implications for action of supercritical fluid during continental subduction-zone Metamorphism[J]. Lithos, 2010, 114(3):385-412.
[20] Schulz B, Klemd R, Brätz H. Host rock compositional controls on zircon trace element signatures in metabasites from the Austroalpine basement[J]. Geochimica et Cosmochimica Acta, 2006, 70(3):697-710.
[21] Ireland T R, Wlotzka F. The oldest zircons in the solar system[J]. Earth and Planetary Science Letters, 1992, 109(1):1-10.
[22] Hoskin P W O. Trace-element composition of hydrothermal zircon and the alteration of Hadean zircon from the Jack Hills, Australia[J]. Geochimica et Cosmochimica Acta, 2005, 69(3):637-648.
[23] 宋国学, 秦克章, 刘铁兵, 等. 阿尔泰南缘阿舍勒盆地泥盆纪火山岩中古老锆石的U-Pb年龄, Hf同位素和稀土元素特征及其地质意义[J]. 岩石学报, 2010, 26(10):2946-2958. Song Guoxue, Qin Kezhang, Liu Tiebing, et al. The U-Pb ages, Hf isotope and REE patterns of older zircons from Devonian volcanic rocks in Ashele basin on the southern margin of Altai orogen and its geological significance[J]. Acta Petrologica Sinica, 2010, 26(10):2946-2958.
[24] Gregory C J, Buick I S, Hermann J, et al. Mineral-scale trace element and U-Th-Pb age constraints on metamorphism and melting during the Petermann Orogeny (central Australia)[J]. Journal of Petrology, 2009, 50(2):251-287.
[25] Ma X, Shu L, Jahn B M, et al. Precambrian tectonic evolution of Central Tianshan, NW China:constraints from U-Pb dating and in situ Hf isotopic analysis of detrital zircons[J]. Precambrian Research, 2012, 222(3):450-473.
[26] Trail D, Watson E B, Tailby N D. Ce and Eu anomalies in zircon as proxies for the oxidation state of magmas[J]. Geochimica et Cosmochimica Acta, 2012, 97(1):70-87.
[27] Heaman L M, Bowins R, Crocket J. The chemical composition of igneous zircon suites:Implications for geochemical tracer studies[J]. Geochimica et Cosmochimica Acta, 1990, 54(6):1597-1607.
[28] Grimes C B, John B E, Kelemen P B, et al. Trace element chemistry of zircons from oceanic crust:A method for distinguishing detrital zircon provenance[J]. Geology, 2007, 35(7):643-646.
[29] Hanchar J M, Van Westrenen W. Rare earth element behavior in zircon-melt systems[J]. Elements, 2007, 3(1):37-42.
[30] Belousova E A, Reid A J, Griffin W L, et al. Rejuvenation vs. recycling of archean crust in the Gawler Craton, South Australia. Evidence from U-Pb and Hf-isotopes in detrital zircon[J]. Lithos, 2009, 113(3):570-582.
[31] 张璐, 巴金, 陈能松, 等. 全吉群碎屑锆石的U-Pb年龄谱和微量元素:基底热事件信息和早期演化启示[J]. 地球科学, 2012, 37(增刊1):28-37. Zhang Lu, Ba Jing, Chen Nengsong, et al. U-Pb age spectra and trace elements of detrital zircon from Quanji Group implications for thermal events and early evolution in the basement[J]. Earth Science:Journal of China University of Geosciences, 2012, 37(Suppl l):28-37.
[32] 郑建平, 路凤香, 余淳梅, 等. 汉诺坝玄武岩中麻粒岩捕虏体锆石Hf同位素、U-Pb定年和微量元素研究:华北下地壳早期演化的记录[J]. 科学通报, 2004, 49(4):375-383. Zheng Jianping, Lu Fengxiang, Yu Chunmei, et al. Study of Hf and UPd dating and trace elements for zircon of granulite xenoliths in Hannuoba basalts:Record of early crust evolution in North China[J]. Chinese Science Bulletin, 2004, 49(4):375-383.
[33] Liu Y, Gao S, Hu Z, et al. Continental and oceanic crust recycling-induced melt-peridotite interactions in the Trans-North China Orogen:U-Pb dating, Hf isotopes and trace elements in zircons from mantle xenoliths[J]. Journal of Petrology, 2010, 51(1-2):537-571.
[34] Liati A, Gebauer D. Constraining the prograde and retrograde PTt path of Eocene HP rocks by SHRIMP dating of different zircon domains:inferred rates of heating, burial, cooling and exhumation for central Rhodope, northern Greece[J]. Contributions to Mineralogy and Petrology, 1999, 135(4):340-354.
[35] Henrique-Pinto R, Janasi V A, Vasconcellos A, et al. Zircon provenance in meta-sandstones of the São Roque Domain:Implications for the Proterozoic evolution of the Ribeira Belt, SE Brazil[J]. Precambrian Research, 2015, 256(3):271-288.
[36] Grimes C B, John B E, Cheadle M J, et al. On the occurrence, trace element geochemistry, and crystallization history of zircon from in situ ocean lithosphere[J]. Contributions to Mineralogy and Petrology, 2009, 158(6):757-783.
[37] Watson E B, Harrison T M. Zircon thermometer reveals minimum melting conditions on earliest Earth[J]. Science, 2005, 308(5723):841-844.
[38] Ferry J M, Watson E B. New thermodynamic models and revised calibrations for the Ti-in-zircon and Zr-in-rutile thermometers[J]. Contributions to Mineralogy and Petrology, 2007, 154(4):429-437.
[39] Fu B, Page F Z, Cavosie A J, et al. Ti-in-zircon thermometry:Applications and limitations[J]. Contributions to Mineralogy and Petrology, 2008, 156(2):197-215.
[40] Watson E B, Wark D A, Thomas J B. Crystallization thermometers for zircon and rutile[J]. Contributions to Mineralogy and Petrology, 2006, 151(4):413-433.
[41] 高晓英, 郑永飞. 金红石Zr和锆石Ti含量地质温度计[J]. 岩石学报, 2011, 27(2):417-432. Gao Xiaoying, Zheng Yongfei. On the Zr-in-rutile and Ti-in-zircon geothermometers[J]. Acta Petrologica Sinica, 2011, 27(2):417-432.
[42] Page F Z, Fu B, Kita N T, et al. Zircons from kimberlite:new insights from oxygen isotopes, trace elements, and Ti in zircon thermometry[J]. Geochimica et Cosmochimica Acta, 2007, 71(15):3887-3903.
[43] 王清海, 许文良, 杨德彬, 等. 锆石中钛温度计在鲁西-苏北地区中生代侵入杂岩中的应用[J]. 岩石学报, 2008, 24(10):2331-2342. Wang Qinghai, Xu Wenliang, Yang Debin, et al. Application of titanium-in-zircon thermometry to Mesozoic intrusive complex from the western Shandong and northern Jiangsu[J]. Acta Petrologica Sinica, 2008, 24(10):2331-2342.
[44] Kröner A, Williams I S, Compston W, et al. Zircon ion microprobe dating of high-grade rocks in Sri Lanka[J]. The Journal of Geology, 1987, 95(6):775-791.
[45] Kröner A, Jaeckel P, Williams I S. Pb-loss patterns in zircons from a high-grade metamorphic terrain as revealed by different dating methods:U-Pb and Pb-Pb ages for igneous and metamorphic zircons from northern Sri Lanka[J]. Precambrian Research, 1994, 66(1):151-181.
[46] Mezger K, Krogstad E J. Interpretation of discordant U-Pb zircon ages:an evaluation[J]. Journal of Metamorphic Geology, 1997, 15(1):127-140.
[47] 汪相, 陈洁, 罗丹. 浙西南淡竹花岗闪长岩中锆石的成因研究及其地质意义[J]. 地质论评, 2008, 54(3):387-398. Wang Xiang, Chen Jie, Luo Dan. Study on petrogenesis of zircons from the Danzhu granodiorite and its geological implications[J]. Geological Review, 2008, 54(3):387-398.
[48] Xue F, Rowley D B, Tucker R D, et al. U-Pb zircon ages of granitoid rocks in the North Dabie complex, Eastern Dabie shan, China[J]. The Journal of Geology, 1997, 105(6):744-753.
[49] Xie Z, Chen J F, Zhou T. U-Pb zircon ages of the rocks in Northern Dabie terrain, China[J]. Scientia Geologica Sinica, 1998, 7(4):501-512.
[50] Rainbird R H, Hamilton M A, Young G M. Detrital zircon geochronology and provenance of the Torridonian, NW Scotland[J]. Journal of the Geological Society, 2001, 158(1):15-27.
[51] Surpless K D, Graham S A, Covault J A, et al. Does the Great Valley Group contain Jurassic strata? Reevaluation of the age and early evolution of a classic forearc basin[J]. Geology, 2006, 34(1):21-24.
[52] Brown E H, Gehrels G E. Detrital zircon constraints on terrane ages and affinities and timing of orogenic events in the San Juan Islands and North Cascades, Washington[J]. Canadian Journal of Earth Sciences, 2007, 44(10):1375-1396.
[53] Dickinson W R, Gehrels G E. U-Pb ages of detrital zircons in Jurassic eolian and associated sandstones of the Colorado Plateau:Evidence for transcontinental dispersal and intraregional recycling of sediment[J]. Geological Society of America Bulletin, 2009, 121(3-4):408-433.
[54] Jones J V, Connelly J N, Karlstrom K E, et al. Age, provenance, and tectonic setting of Paleoproterozoic quartzite successions in the southwestern United States[J]. Geological Society of America Bulletin, 2009, 121(1-2):247-264.
[55] Barbeau D L, Ducea M N, Gehrels G E, et al. U-Pb detrital-zircon geochronology of northern Salinian basement and cover rocks[J]. Geological Society of America Bulletin, 2005, 117(3-4):466-481.
[56] Tucker R T, Roberts E M, Hu Y, et al. Detrital zircon age constraints for the Winton Formation, Queensland:contextualizing Australia's Late Cretaceous dinosaur faunas[J]. Gondwana Research, 2013, 24(2):767-779.
[57] Ludwig K R. Isoplot v3.71:A geochronological toolkit for Microsoft Excel[M]. Berkeley:California, Berkeley Geochronology Center, 2009.
[58] 李双应, 程成, 王松, 等. 华北地台南缘霍邱安阳山地区八公山群地层时代归属(青白口纪):来自碎屑锆石年代学的制约[J]. 地质科学, 2014, 49(2):608-617. Li Shuangying, Cheng Cheng, Wang Song, et al. Stratigraphy time of the Bagongshan Group in the Anyangshan area of Huoqiu County in the south margin of the North China Block (the Qingbaikou):Constraints from the detrital zircon chronology[J]. Chinese Journal of Geology, 2014, 49(2):608-617.
[59] 孙蓓蕾, 曾凡桂, 刘超, 等. 太原西山上古生界含煤地层最大沉积年龄的碎屑锆石U-Pb定年约束及地层意义[J]. 地质学报, 2014, 88(2):185-197. Sun Beilei, Zeng Fangui, Liu Chao, et al. Constraints on U-Pb dating of detrital zircon of the maximum depositional age for upper Paleozoic coal-bearing strata in Xishan, Taiyuan and its stratigraphic significance[J]. Acta Geologica Sinica, 2014, 88(2):185-197.
[60] 第五春荣, 孙勇, 刘养杰, 等. 秦皇岛柳江地区长龙山组石英砂岩物质源区组成-来自碎屑锆石U-Pb-Hf同位素的证据[J]. 岩石矿物学杂志, 2011, 30(1):1-12. Diwu Chunrong, Sun Yong, Liu Yangjie, et al. The protolith nature of quartz sandston from Changlongshan Formation in Liujiang area, Qinhuangdao city:Evidence of U-Pb and Hf isotope from detrital zircon[J]. Acta Petrologica et Mineralogica, 2011, 30(1):1-12.
[61] Geslin J K, Link P K, Fanning C M. High-precision provenance determination using detrital-zircon ages and petrography of Quaternary sands on the eastern Snake River Plain, Idaho[J]. Geology, 1999, 27(4):295-298.
[62] Cawood P A, Nemchin A A. Provenance record of a rift basin:U/Pb ages of detrital zircons from the Perth Basin, Western Australia[J]. Sedimentary Geology, 2000, 134(3):209-234.
[63] 胡波, 翟明国, 郭敬辉, 等. 华北克拉通北缘化德群中碎屑锆石的LA-ICP-MS U-Pb年龄及其构造意义[J]. 岩石学报, 2009, 25(1):193-211. Hu Bo, Zhai Mingguo, Guo Jinghui, et al. LA-ICP-MS U-Pb geochronology of detrital zircons from the Huade group in the northern margin of the North China Craton and its tectonic significance[J]. Acta Petrologica Sinica, 2009, 25(1):193-211.
[64] 第五春荣, 孙勇, 高剑峰, 等. 华北克拉通早前寒武纪构造-热事件性质探索:铁铜沟组石英岩中碎屑锆石U-Pb-Hf-O同位素组成[J]. 科学通报, 2013, 58(28-29):2946-2957. Diwu Chunrong, Sun Yong, Gao Jianfeng, et al. Early Precambrian tectonothermal events of the North China Craton:Constraints from in situ detrital zircon U-Pb, Hf and O isotopic compositions in Tietonggou Formation[J]. Chinese Science Bulletin, 2013, 58(31):3760-3770.
[65] Gehrels G. Detrital zircon U-Pb geochronology:Current methods and new opportunities[M/OL]//Tectonics of sedimentary Bbasins:Rrecent Advances. Hoboken, USA:Wiley Online Library, 2011:45-62.[2015-10-21]. http://onlinelibrary.wiley.com.
[66] Berry R F, Jenner G A, Meffre S, et al. A North American provenance for Neoproterozoic to Cambrian sandstones in Tasmania?[J]. Earth and Planetary Science Letters, 2001, 192(2):207-222.
[67] Drew J H, Glen A G, Leemis L M. Computing the cumulative distribution function of the Kolmogorov-Smirnov statistic[J]. Computational Statistics & Data Analysis, 2000, 34(1):1-15.
[68] DeGraaff-Surpless K, Mahoney J B, Wooden J L, et al. Lithofacies control in detrital zircon provenance studies:Insights from the Cretaceous Methow basin, southern Canadian Cordillera[J]. Geological Society of America Bulletin, 2003, 115(8):899-915.
[69] Sircombe K N, Hazelton M L. Comparison of detrital zircon age distributions by kernel functional estimation[J]. Sedimentary Geology, 2004, 171(1):91-111.
[70] Satkoski A M, Wilkinson B H., Hietpas J, et al. Likeness among detrital zircon populations:An approach to the comparison of age frequency data in time and space[J]. GSA Bulletin, 2013, 125(12):1783-1799
[71] Dong Y P, Liu X M, Neubauer F, et al. Timing of Paleozoic amalgamation between the North China and South China Blocks:Evidence from detrital zircon U-Pb ages[J]. Tectonophysics, 2013, 586(2):173-191.
[72] Yan Z, Wang Z Q, Yan Q R, et al. Geochemical constraints on the provenance and depositional setting of the Devonian Liuling Group, East Qinling Mountains, central China:Implications for the tectonic evolution of the Qinling orogenic belt[J]. Journal of Sedimentary Research, 2012, 82(1):9-20.
[73] Dong Y P, Zhang G W, Neubauer F, et al. Tectonic evolution of the Qinling orogen, China:Review and synthesis[J]. Journal of Asian Earth Sciences, 2011, 41(2):213-237.
[74] Wang X X, Wang T, Zhang C L. Neoproterozoic, Paleozoic, and Mesozoic granitoid magmatism in the Qinling Orogen, China:Constraints on orogenic process[J]. Journal of Asian Earth Science, 2013, 72(1):129-151.
[75] 程胜东, 方俊钦, 赵盼, 等. 内蒙古西拉木伦河两岸志留-泥盆系碎屑锆石年龄及其构造意义[J]. 岩石学报, 2014, 30(7):1909-1921. Cheng Shengdong, Fang Junqin, Zhao Pan, et al. Detrital zircon ages of the silurian-devonian clastic rocks in south and north banks of Xar Moron River, Inner Mongolia[J]. Acta Petrologica Sinica, 2014, 30(7):1909-1921.