[1] 柏道远,蒋启生,李彬,等. 2021. 湘东北冷家溪群沉积岩地球化学特征及其构造意义[J]. 地质科技通报,40(1):1-13,26.

Bai Daoyuan, Jiang Qisheng, Li Bin, et al. 2021. Geochemistry and tectonic implication of the sedimentary rocks in Lengjiaxi Group in northeastern Hunan[J]. Bulletin of Geological Science and Technology, 40(1): 1-13, 26.
[2] 陈骏,王鹤年. 2004. 地球化学[M]. 北京:科学出版社:1-418.

Chen Jun, Wang Henian. 2004. Geochemistry[M]. Beijing: Science Press: 2004: 1-418.
[3] 陈涛,王欢,张祖青,等. 2003. 粘土矿物对古气候指示作用浅析[J]. 岩石矿物学杂志,22(4):416-420.

Chen Tao, Wang Huan, Zhang Zuqing, et al. 2003. Clay minerals as indicators of paleoclimate[J]. Acta Petrologica et Mineralogica, 22(4): 416-420.
[4] 程立雪,陈洪德,徐胜林,等. 2011. 川西前陆盆地下侏罗统白田坝组沉积特征[J]. 沉积与特提斯地质, 31(1):28-34.

Cheng Lixue, Chen Hongde, Xu Shenglin, et al. 2011. Sedimentary characteristics of the Lower Jurassic Baitianba Formation in western Sichuan foreland[J]. Sedimentary Geology and Tethyan Geology, 31(1): 28-34.
[5] 迟清华,鄢明才. 2007. 应用地球化学元素丰度数据手册[M]. 北京:地质出版社:1-148.

Chi Qinghua, Yan Mingcai. 2007. Handbook of elemental abundance for applied geochemistry[M]. Beijing: Geological Publishing House: 1-148.
[6] 崔建堂,王峰,段建国,等. 2013. 南秦岭西乡群孙家河组锆石SHRIMP U-Pb年龄及其构造地质意义[J]. 沉积与特提斯地质,33(4):1-5.

Cui Jiantang, Wang Feng, Duan Jianguo, et al. 2013. The Sunjiahe Formation of the Xixiang Group, southern Qinling ranges: SHRIMP zircon U-Pb age and its tectonic implications[J]. Sedimentary Geology and Tethyan Geology, 33(4): 1-5.
[7] 代鸿章,王登红,刘善宝,等. 2023. 国外锂矿找矿新进展(2019~2021年)及对我国战略性矿产勘查的启示[J]. 地质学报, 97(2):583-595.

Dai Hongzhang, Wang Denghong, Liu Shanbao, et al. 2023. New progress in lithium prospecting abroad (2019~2021) and its significance to China’s strategic mining resources exploration[J]. Acta Geologica Sinica, 97(2): 583-595.
[8] 丁一,李智武,冯逢,等. 2013. 川中龙岗地区下侏罗统自流井组大安寨段湖相混合沉积及其致密油勘探意义[J]. 地质论评,59(2):389-400.

Ding Yi, Li Zhiwu, Feng Feng, et al. 2013. Mixing of lacustrine siliciclastic-carbonate sediments and its significance for tight oil exploration in the Daanzhai member, Ziliujing Formation, Lower Jurassic, in Longgang area, central Sichuan Basin[J]. Geological Review, 59(2): 389-400.
[9] 杜作勇,冷阳春,卫纯纯,等. 2019. 伊利石和高岭石对U(Ⅵ)的吸附[J]. 核化学与放射化学,41(5):503-508.

Du Zuoyong, Leng Yangchun, Wei Chunchun, et al. 2019. Adsorption of illite and kaolinite for U(Ⅵ)[J]. Journal of Nuclear and Radiochemistry, 41(5): 503-508.
[10] 关有志. 1992. 科尔沁沙地的元素、粘土矿物与沉积环境[J]. 中国沙漠,12(1):9-15.

Guan Youzhi. 1992. The element, clay mineral and depositional environment in Horqin Sand Land[J]. Journal of Desert Research, 12(1): 9-15.
[11] 郭彤楼,李宇平,魏志红. 2011. 四川盆地元坝地区自流井组页岩气成藏条件[J]. 天然气地球科学,22(1):1-7.

Guo Tonglou, Li Yuping, Wei Zhihong. 2011. Reservoir-forming conditions of shale gas in Ziliujing Formation of Yuanba area in Sichuan Basin[J]. Natural Gas Geoscience, 22(1): 1-7.
[12] 郭旭升,胡东风,李宇平,等. 2016. 海相和湖相页岩气富集机理分析与思考:以四川盆地龙马溪组和自流井组大安寨段为例[J]. 地学前缘,23(2):18-28.

Guo Xusheng, Hu Dongfeng, Li Yuping, et al. 2016. Analyses and thoughts on accumulation mechanisms of marine and lacustrine shale gas: A case study in shales of Longmaxi Formation and Da’anzhai section of Ziliujing Formation in Sichuan Basin[J]. Earth Science Frontiers, 23(2): 18-28.
[13] 何江,胡欣,张本健,等. 2013. 四川盆地西北部下侏罗统白田坝组沉积体系[J]. 石油实验地质,35(5):515-522.

He Jiang, Hu Xin, Zhang Benjian, et al. 2013. Depositional system of Lower Jurassic Baitianba Formation in northwestern Sichuan Basin[J]. Petroleum Geology & Experiment, 35(5): 515-522.
[14] 贾永斌,于文修,温汉捷,等. 2023. 滇中盆地南缘富锂黏土岩地球化学特征及沉积环境初探[J]. 沉积学报,2023,41(1):170-182.

Jia Yongbin, Yu Wenxiu, Wen Hanjie, et al. 2023. Geochemical characteristics and sedimentary environment of Li-rich clay rocks at the southern margin of the central Yunnan Basin[J]. Acta Sedimentologica Sinica, 41(1): 170-182.
[15] 凌文黎,高山,程建萍,等. 2006. 扬子陆核与陆缘新元古代岩浆事件对比及其构造意义:来自黄陵和汉南侵入杂岩ELA-ICPMS锆石U-Pb同位素年代学的约束[J]. 岩石学报,22(2):387-396.

Ling Wenli, Gao Shan, Cheng Jianping, et al. 2006. Neoproterozoic magmatic events within the Yangtze continental interior and along its northern margin and their tectonic implication: Constraint from the ELA-ICPMS U-Pb geochronology of zircons from the Huangling and Hannan complexes[J]. Acta Petrologica Sinica, 22(2): 387-396.
[16] 刘刚. 2007. 大巴山侏罗纪前陆层序地层学研究[D]. 北京:中国地质科学院:1-168.

Liu Gang. 2007. Study on Jurassic sequence stratigraphy in Dabashan foreland belt, central China[D]. Beijing: Chinese Academy of Geological Sciences: 1-168.
[17] 刘鑫,尚婷,田景春,等. 2021. 鄂尔多斯盆地镇北地区延长组长4+5段沉积期古环境条件及意义[J]. 地质学报,95(11):3501-3518.

Liu Xin, Shang Ting, Tian Jingchun, et al. 2021. Paleo-sedimentary environmental conditions and its significance of Chang 4+5 member of Triassic Yanchang Formation in the Zhenbei area, Ordos Basin, NW China[J]. Acta Geologica Sinica, 95(11): 3501-3518.
[18] 钱利军. 2013. 川西北地区中、下侏罗统物质分布规律与沉积充填过程[D]. 成都:成都理工大学:1-121.

Qian Lijun. 2013. Regulation of sedimentary distribution and sedimentary filling process during Middle and Lower Jurassic in western and northern Sichuan, China[D]. Chengdu: Chengdu University of Technology: 1-121.
[19] 舒志国,周林,李雄,等. 2021. 四川盆地东部复兴地区侏罗系自流井组东岳庙段陆相页岩凝析气藏地质特征及勘探开发前景[J]. 石油与天然气地质,42(1):212-223.

Shu Zhiguo, Zhou Lin, Li Xiong, et al. 2021. Geological characteristics of gas condensate reservoirs and their exploration and development prospect in the Jurassic continental shale of the Dongyuemiao member of Ziliujing Formation, Fuxing area, eastern Sichuan Basin[J]. Oil & Gas Geo-logy, 42(1): 212-223.
[20] 孙莎莎,董大忠,李育聪,等. 2021. 四川盆地侏罗系自流井组大安寨段陆相页岩油气地质特征及成藏控制因素[J]. 石油与天然气地质,42(1):124-135.

Sun Shasha, Dong Dazhong, Li Yucong, et al. 2021. Geological characteristics and controlling factors of hydrocarbon accumulation in terrestrial shale in the Da'anzhai member of the Jurassic Ziliujing Formation, Sichuan Basin[J]. Oil & Gas Geology, 42(1): 124-135.
[21] 王登红,代鸿章,刘善宝,等. 2022. 中国锂矿十年来勘查实践和理论研究的十个方面新进展新趋势[J]. 地质力学学报,28(5):743-764.

Wang Denghong, Dai Hongzhang, Liu Shanbao, et al. 2022. New progress and trend in ten aspects of lithium exploration practice and theoretical research in China in the past decade[J]. Journal of Geomechanics, 28(5): 743-764.
[22] 王濡岳,胡宗全,赖富强,等. 2023. 川东北地区下侏罗统自流井组大安寨段陆相页岩脆性特征及其控制因素[J]. 石油与天然气地质,44(2):366-378.

Wang Ruyue, Hu Zongquan, Lai Fuqiang, et al. 2023. Brittleness features and controlling factors of continental shale from Da’anzhai member of the Lower Jurassic Ziliujing Formation, northeastern Sichuan Basin[J]. Oil & Gas Geology, 44(2): 366-378.
[23] 温汉捷,罗重光,杜胜江,等. 2020. 碳酸盐黏土型锂资源的发现及意义[J]. 科学通报,65(1):53-59.

Wen Hanjie, Luo Chongguang, Du Shengjiang, et al. 2020. Carbonate-hosted clay-type lithium deposit and its prospecting significance[J]. Chinese Science Bulletin, 65(1): 53-59.
[24] 夏林圻,夏祖春,马中平,等. 2009. 南秦岭中段西乡群火山岩岩石成因[J]. 西北地质,42(2):1-37.

Xia Linqi, Xia Zuchun, Ma Zhongping, et al. 2009. Petrogenesis of volcanic rocks from Xi-xiang Group in middle part of South Qinling Mountains[J]. Northwestern Geology, 42(2): 1-37.
[25] 夏林圻,夏祖春,徐学义. 1996. 南秦岭中—晚元古代火山岩性质与前寒武纪大陆裂解[J]. 中国科学:地球科学,26(3):237-243.

Xia Linqi, Xia Zuchun, Xu Xueyi. 1996. Properties of Middle–Late Proterozoic volcanic rocks in South Qinling and the Pre-cambrian continental break-up[J]. Science China Earth Sciences, 26(3): 237-243.
[26] 解习农,任建业,焦养泉,等. 2013. 沉积盆地分析基础[M]. 武汉:中国地质大学出版社有限责任公司:1- 408.

Xie Xinong, Ren Jianye, Jiao Yangquan, et al. 2013. Principles of sedimentary basin analysis[M]. Wuhan: China University of Geosciences Press: 1-408.
[27] 徐小涛,邵龙义. 2018. 利用泥质岩化学蚀变指数分析物源区风化程度时的限制因素[J]. 古地理学报,20(3):515-522.

Xu Xiaotao, Shao Longyi. 2018. Limiting factors in utilization of chemical index of alteration of mudstones to quantify the degree of weathering in provenance[J]. Journal of Palaeogeography, 20(3): 515-522.
[28] 徐学义,陈隽璐,李向民,等. 2009a. 扬子地台北缘白勉峡组和三湾组火山岩形成构造环境及岩石成因的地球化学约束[J]. 地质学报,83(11):1703-1718.

Xu Xueyi, Chen Junlu, Li Xiangmin, et al. 2009a. Geochemical constrains on the petrogenesis and tectonic setting discrimination of volcanic rocks from the Baimianxia and the Sanwan Formations[J]. Acta Geologica Sinica, 83(11): 1703-1718.
[29] 徐学义,陈隽璐,李向民,等. 2010. 西乡群三郎铺组和大石沟组火山岩U-Pb定年及岩石成因研究[J]. 岩石学报,26(2):617-632.

Xu Xueyi, Chen Junlu, Li Xiangmin, et al. 2010. Geochemistry and petrogenesis of volcanic rocks from Sanlangpu Formation and Dashigou Formation[J]. Acta Petrologica Sinica, 26(2): 617-632.
[30] 徐学义,夏林圻,陈隽璐,等. 2009b. 扬子地块北缘西乡群孙家河组火山岩形成时代及元素地球化学研究[J]. 岩石学报,25(12):3309-3326.

Xu Xueyi, Xia Linqi, Chen Junlu, et al. 2009b. Zircon U-Pb dating and geochemical study of volcanic rocks from Sunjiahe Formation of Xixiang Group in northern margin of Yangtze Plate[J]. Acta Petrologica Sinica, 25(12): 3309-3326.
[31] 许志琴,王汝成,朱文斌,等. 2020. 川西花岗—伟晶岩型锂矿科学钻探:科学问题和科学意义[J]. 地质学报,94(8):2177-2189.

Xu Zhiqin, Wang Rucheng, Zhu Wenbin, et al. 2020. Scientific drilling project of granite-pegmatite-type lithium deposit in western Sichuan: Scientific problems and significance[J]. Acta Geologica Sinica, 94(8): 2177-2189.
[32] 杨季华,罗重光,杜胜江,等. 2020. 高黏土含量沉积岩古环境指标适用性讨论[J]. 矿物学报, 40(6):723-733.

Yang Jihua, Luo Chongguang, Du Shengjiang, et al. 2020. Discussion on the applicability of paleoenvironmental index for sedimentary rocks with high clay content[J]. Acta Mineralogica Sinica, 40(6): 723-733.
[33] 杨文博,周斌,范鹏,等. 2023. 扬子陆块北缘陕西汉中地区二叠纪:侏罗纪多个层位中发现沉积型锂矿化体[J]. 中国地质,50(2):643-644.

Yang Wenbo, Zhou Bin, Fan Peng, et al. 2023. Discovery of the sedimentary-type lithium mineralized body in the Permian-Jurassic strata of Hanzhong area, Shaanxi province, northern margin of the Yangtze Block[J]. Geology in China, 50(2): 643-644.
[34] 于沨,王登红,于扬,等. 2019. 国内外主要沉积型锂矿分布及勘查开发现状[J]. 岩矿测试, 38(3):354-364.

Yu Feng, Wang Denghong, Yu Yang, et al. 2019. The distribution and exploration status of domestic and foreign sedimentary-type lithium deposits[J]. Rock and Mineral Analysis, 38(3): 354-364.
[35] 张国伟,程顺有,郭安林,等. 2004. 秦岭—大别中央造山系南缘勉略古缝合带的再认识:兼论中国大陆主体的拼合[J]. 地质通报,23(9/10):846-853.

Zhang Guowei, Cheng Shunyou, Guo Anlin, et al. 2004. Mianlue paleo-suture on the southern margin of the central orogenic system in Qinling-Dabie with a discussion of the assembly of the main part of the continent of China[J]. Geological Bulletin of China, 23(9/10): 846-853.
[36] 张茜. 2010. 米仓山隆升时代的沉积学制约[D]. 西安:西北大学:1-58.

Zhang Qian. 2010. Sedimentary evidences constrain on the uplift of the Micang Shan[D]. Xi’an: Northwest University: 1-58.
[37] 张拴厚,韩芳林,王根宝,等. 2017. 陕西省区域地质志[M]. 北京:地质出版社:1- 946.

Zhang Shuanhou, Han Fanglin, Wang Genbao, et al. 2017. Regional geology of Shaanxi province[M]. Beijing: Geological Publishing House, 2013: 1-946.
[38] 张英利,王宗起,王坤明,等. 2020. 北大巴山地区斑鸠关组砂岩地球化学特征对物源和构造环境的限定[J]. 地质学报,94(4):1192-1207.

Zhang Yingli, Wang Zongqi, Wang Kunming, et al. 2020. Sandstone geochemical constraints on the provenance and tectonic setting of the Banjiuguan Formation in the north Daba Mountain[J]. Acta Geologica Sinica, 94(4): 1192-1207.
[39] 赵凤清,赵文平,左义成,等. 2006. 陕南汉中地区新元古代岩浆岩U-Pb年代学[J]. 地质通报, 25(3):383-388.

Zhao Fengqing, Zhao Wenping, Zuo Yicheng, et al. 2006. U-Pb geochronology of Neoproterozoic magmatic rocks in Hanzhong, southern Shaanxi, China[J]. Geological Bulletin of China, 25(3): 383-388.
[40] 赵振华. 2016. 微量元素地球化学原理[M]. 2版. 北京:科学出版社:1-534.

Zhao Zhenhua. 2016. Principles of trace element geochemistry[M]. 2nd ed. Beijing: Science Press: 1-534.
[41] Allègre C J, Minster J F. 1978. Quantitative models of trace element behavior in magmatic processes[J]. Earth and Planetary Science Letters, 38(1): 1-25.
[42] Barshad J. 1966. The effect of a variation of precipitation on the nature of clay mineral formation in soils from acid and basic igneous rocks[C]. Internat Clay Conference: 167-173.
[43] Bhatia M R. 1983. Plate tectonics and geochemical composition of sandstones[J]. The Journal of Geology, 91(6): 611-627.
[44] Bhatia M R. 1985. Rare earth element geochemistry of Australian Paleozoic graywackes and mudrocks: Provenance and tectonic control[J]. Sedimentary Geology, 45(1/2): 97-113.
[45] Bhatia M R, Crook K A W. 1986. Trace element characteristics of graywackes and tectonic setting discrimination of sedimentary basins[J]. Contributions to Mineralogy and Petrology, 92(2): 181-193.
[46] Bradley D, Munk L, Jochens H, et al. 2013. A preliminary deposit model for lithium brines[R]. Reston, VA: U.S. Geological Survey.
[47] Chen C, Lee C T A, Tang M, et al. 2020. Lithium systematics in global arc magmas and the importance of crustal thickening for lithium enrichment[J]. Nature Communications, 11(1): 5313.
[48] Cox R, Lowe D R, Cullers R L. 1995. The influence of sediment re-cycling and basement composition on evolution of mudrock chemistry in the southwestern United States[J]. Geochimica et Cosmochimica Acta, 59(14): 2919-2940.
[49] Dong Y P, Liu X M, Santosh M, et al. 2011a. Neoproterozoic subduction tectonics of the northwestern Yangtze Block in South China: Constrains from zircon U-Pb geochronology and geochemistry of mafic intrusions in the Hannan Massif[J]. Precambrian Research, 189(1/2): 66-90.
[50] Dong Y P, Liu X M, Santosh M, et al. 2012. Neoproterozoic accretionary tectonics along the northwestern margin of the Yangtze Block, China: Constraints from zircon U-Pb geochronology and geo-chemistry[J]. Precambrian Research, 196/197: 247-274.
[51] Dong Y P, Zhang G W, Hauzenberger C, et al. 2011b. Palaeozoic tectonics and evolutionary history of the Qinling orogen: Evidence from geochemistry and geochronology of ophiolite and related volcanic rocks[J]. Lithos, 122(1/2): 39-56.
[52] Fedo C M, Nesbitt H W, Young G M. 1995. Unraveling the effects of potassium metasomatism in sedimentary rocks and paleosols, with implications for paleoweathering conditions and provenance[J]. Geology, 23(10): 921-924.
[53] Floyd P A, Leveridge B E. 1987. Tectonic environment of the Devonian Gramscatho Basin, south Cornwall: Framework mode and geochemical evidence from turbiditic sandstones[J]. Journal of the Geological Society, 144(4): 531-542.
[54] Johnsson M J. 1993. The system controlling the composition of clastic sediments[M]//Johnsson M J, Basu A. Processes controlling the composition of clastic sediments. McLean: Geological Society of America: 1-20.
[55] Kesler S E, Gruber P W, Medina P A, et al. 2012. Global lithium resources: Relative importance of pegmatite, brine and other deposits[J]. Ore Geology Reviews, 48: 55-69.
[56] Ling W L, Gao S, Zhang B R, et al. 2003. Neoproterozoic tectonic evolution of the northwestern Yangtze Craton, South China: Implications for amalgamation and break-up of the Rodinia Supercontinent[J]. Precambrian Research, 122(1/2/3/4): 111-140.
[57] McLennan S M. 1993. Weathering and global denudation[J]. The Journal of Geology, 101(2): 295-303.
[58] McLennan S M, Hemming S, McDaniel D K, et al. 1993. Geochemical approaches to sedimentation, provenance, and tectonics[M]//Johnsson M J, Basu A. Processes controlling the composition of clastic sediments. McLean: Geological Society of America: 21-40.
[59] Milliman J D, Farnsworth K L. 2011. River discharge to the coastal ocean: A global synthesis[M]. Cambridge: Cambridge University Press: 1-384.
[60] Nesbitt H W, Young G M. 1982. Early Proterozoic climates and plate motions inferred from major element chemistry of lutites[J]. Nature, 299(5885): 715-717.
[61] Nesbitt H W, Young G M. 1984. Prediction of some weathering trends of plutonic and volcanic rocks based on thermodynamic and kinetic considerations[J]. Geochimica et Cosmochimica Acta, 48(7): 1523-1534.
[62] Nesbitt H W, Young G M. 1989. Formation and diagenesis of weathering profiles[J]. The Journal of Geology, 97(2): 129-147.
[63] Roser B P, Korsch R J. 1988. Provenance signatures of sandstone-mudstone suites determined using discriminant function analysis of major-element data[J]. Chemical Geology, 67(1/2): 119-139.
[64] Sovacool B K, Ali S H, Bazilian M, et al. 2020. Sustainable minerals and metals for a low-carbon future[J]. Science, 367(6473): 30-33.
[65] Sun S S, McDonough W F. 1989. Chemical and isotopic systematics of oceanic basalts: Implications for mantle composition and processes[J]. Geological Society, London, Special Publications, 42(1): 313-345.
[66] van de Kamp P C. 1968. Geochemistry and origin of metasediments in the Haliburton-Madoc area, southeastern Ontario[J]. Canadian Journal of Earth Sciences, 5(6): 1337-1372.
[67] van de Kamp P C, Leake B E. 1985. Petrography and geochemistry of feldspathic and mafic sediments of the northeastern Pacific margin[J]. Earth and Environmental Science Transactions of the Royal Society of Edinburgh, 76(4): 411-449.
[68] Zhao J H, Zhou M F. 2008. Neoproterozoic adakitic plutons in the northern margin of the Yangtze Block, China: Partial melting of a thickened lower crust and implications for secular crustal evolution[J]. Lithos, 104(1/2/3/4): 231-248.
[69] Zhao J H, Zhou M F. 2009. Secular evolution of the Neoproterozoic lithospheric mantle underneath the northern margin of the Yangtze Block, South China[J]. Lithos, 107(3/4): 152-168.
[70] Zhao J H, Zhou M F, Zheng J P, et al. 2010. Neoproterozoic crustal growth and reworking of the northwestern Yangtze Block: Constraints from the Xixiang dioritic intrusion, South China[J]. Lithos, 120(3/4): 439-452.
[71] Zhou M F, Yan D P, Kennedy A K, et al. 2002. SHRIMP U-Pb zircon geochronological and geochemical evidence for Neoproterozoic arc-magmatism along the western margin of the Yangtze Block, South China[J]. Earth and Planetary Science Letters, 196(1/2): 51-67.