nav emailalert searchbtn searchbox tablepage yinyongbenwen piczone journalimg journalInfo searchdiv qikanlogo popupnotification paper paperNew
2023, 10, v.60 1608-1618
稀土Er3+离子掺杂的全无机CsPbCl3钙钛矿纳米晶的合成及发光性能
基金项目(Foundation):
邮箱(Email):
DOI: 10.13250/j.cnki.wndz.2023.010.010
摘要:

CsPbCl3全无机钙钛矿纳米晶(PNC)的应用受到其弱发光、极低的光致发光量子产率(PLQY)以及长期暴露于氧气和湿气环境中稳定性差等的限制。为了解决这一问题,使用稀土金属元素铒的三价阳离子(Er3+)作为B位掺杂元素,制备出了明亮蓝紫光发射的Er3+∶CsPbCl3钙钛矿纳米晶发光材料。掺杂后的纳米晶具有最佳的形貌和发光性能:PLQY为16.7%、平均粒径约为7.98nm、荧光发射峰蓝移至400nm、半峰全宽仅为10.0nm。同时该纳米晶的环境稳定性也显著提升,在测试环境(温度60℃、湿度60%RH)下存放10天后,其发光强度仍能保持初始荧光发射强度的60%以上。此工作较大程度上改善了CsPbCl3钙钛矿纳米晶存在的问题,对于其实际应用存在重大意义。

Abstract:

CsPbCl3 all-inorganic perovskite nanocrystals(PNCs) are still limited by weak luminescence,very low photoluminescence quantum yield(PLQY),and instability under long-term exposure to oxygen and moisture.To solve the problem,Er3+∶CsPbCl3 PNCs emitting bright blue-violet light were prepared by using the trivalent cation of erbium(Er3+) as B-site doping element.The doped nanocrystals have the best morphology and luminescence properties :PLQY is 16.7%,average particle size is about 7.98 nm,fluorescence emission peak blue shifts to 400 nm,full width at half maximum(FWHM) is only 10.0 nm.Meanwhile,the environmental stability of the nanocrystals is also significantly improved.After 10 days of storage in the test environment(temperature of 60 ℃,humidity of 60%RH),its luminous intensity can still maintain more than 60% of the initial fluorescence emission intensity.The work has improved the existing problems of CsPbCl3 PNCs to a great extent,and has great significance for practical application.

参考文献

[1] WEI Y, WANG W, WANG Z N, et al. Recent progress of bismuth effect on all-inorganic lead-free metal halide derivatives:crystals structure, luminescence properties, and applications[J]. Advanced Functional Materials, 2023, 33(2):2205829-1-2205829-23.

[2] SUN H Z, YANG Z Y, WEI M Y, et al. Chemically addressable perovskite nanocrystals for light-emitting applications[J]. Advanced Materials, 2017, 29(34):1701153-1-1701153-9.

[3] SHI Z J, GUO J, CHEN Y H, et al. Lead-free organic-inorganic hybrid perovskites for photovoltaic applications:recent advances and perspectives[J]. Advanced Materials, 2017,29(16):1605005-1-1605005-28.

[4] REN J J, DONG X, ZHANG G Y, et al. Air-stable and water-resistant all-inorganic perovskite quantum dot films for white-light-emitting applications[J]. New Journal of Chemistry, 2017, 41:13961-13967.

[5] LI X M, CAO F, YU D J, et al. All inorganic halide perovskites nanosystem:synthesis, structural features, optical properties and optoelectronic applications[J]. Small, 2017,13:1603996-1-1603996-24.

[6] KOVALENKO M V, PROTESESCU L, BODNARCHUK M I. Properties and potential optoelectronic applications of lead halide perovskite nanocrystals[J]. Science, 2017, 358:745-750.

[7] JU M G, DAI J, MA L, et al. Lead-free mixed tin and germanium perovskites for photovoltaic application[J]. Journal of the American Chemical Society, 2017, 139:8038-8043.

[8] HA S T, SU R, XING J, et al. Metal halide perovskite nanomaterials:synthesis and applications[J]. Chemical Science, 2017, 8:2522-2536.

[9] JIA Z Y, CHENG C P, CHEN X, et al. Applications of allinorganic perovskites for energy storage[J]. Materials Advances, 2023, 4(1):79-104.

[10] WU Y J, JIA R J, XU J, et al. Strategies of improving Cs Pb X3 perovskite quantum dots optical performance[J].Frontiers in Materials, 2022, 9:1098-1123.

[11] ZHU X, GE L, WANG Y, et al. Recent advances in enhancing and enriching the optical properties of Cl-based Cs Pb X3nanocrystals[J]. Advanced Optical Materials, 2021, 9(16):2100058-1-2100058-17.

[12] SUN R, ZHOU D L, WANG Y, et al. Highly efficient ligand-modified manganese ion doped Cs Pb Cl3 perovskite quantum dots for photon energy conversion in silicon solar cells[J]. Nanoscale, 2020, 12(36):18621-18628.

[13] CAO L Z, LIU X, LI Y D, et al. Recent progress in allinorganic metal halide nanostructured perovskites:materials design, optical properties, and application[J]. Frontiers of Physics, 2021, 16:33201-1-33201-20.

[14] XIAO X Y, HU J, TANG S, et al. Recent advances in halide perovskite memristors:materials, structures,mechanisms, and applications[J]. Advanced Materials Technologies, 2020, 5(6):1900914-1-1900914-29.

[15] BODNARCHUK M I, BOEHME S C, ten BRINCK S, et al. Rationalizing and controlling the surface structure and electronic passivation of cesium lead halide nanocrystals[J].ACS Energy Letters, 2019, 4:63-74.

[16] WANG Y,SUN H D.All-inorganic metal halide perovskite nanostructures:from photophysics to light-emitting applications[J].Small Methods,2018,2(1):1700252-1-1700252-27.

[17] WEI Y, CHENG Z Y, LIN J. An overview on enhancing the stability of lead halide perovskite quantum dots and their applications in phosphor-converted LEDs[J]. Chemical Society Reviews, 2019, 48(1):310-350.

[18] KIESLICH G, SUN S J, CHEETHAM A K. Solid-state principles applied to organic-inorganic perovskites:new tricks for an old dog[J]. Chemical Science, 2014, 5(12):4712-4715.

[19] WANG E S, YU L P, LIAN S X, et al. An overview on advances in all-inorganic perovskite quantum dots[J].Materials Review, 2019, 33:777-783.

[20] PAN Y W, ZHANG Y F, KANG W M, et al. Progress in the preparation and application of Cs Pb X3 perovskites[J].Materials Advances, 2022, 3(10):4053-4068.

[21] HU Q S, LI Z, TAN Z F, et al. Rare earth ion-doped Cs Pb Br3 nanocrystals[J]. Advanced Optical Materials,2018, 6(2):1700864-1-1700864-5.

[22] DING N,XU W,ZHOU D L,et al.Extremely efficient quantum-cutting Cr3+,Ce3+,Yb3+tridoped perovskite quantum dots for highly enhancing the ultraviolet response of silicon photodetectors with external quantum efficiency exceeding 70%[J].Nano Energy,2020,78:105278-1-105278-7.

[23] ZHANG X T, ZHANG Y, ZHANG X Y, et al. Yb3+and Yb3+/Er3+doping for near-infrared emission and improved stability of Cs Pb Cl3 nanocrystals[J]. Journal of Materials Chemistry:C, 2018, 6(37):10101-10105.

[24] PAN G C,BAI X,YANG D W,et al.Doping lanthanide into perovskite nanocrystals:highly improved and expanded optical properties[J].Nano Letters,2017,17(12):8005-8011.

[25] AHMED G H, EL-DEMELLAWI J K, YIN J, et al. Giant photoluminescence enhancement in Cs Pb Cl3 perovskite nanocrystals by simultaneous dual-surface passivation[J].ACS Energy Letters, 2018, 3(10):2301-2307.

[26] MA J J, Mc LEOD J A, CHANG L Y, et al. Increasing photoluminescence yield of Cs Pb Cl3 nanocrystals by heterovalent doping with Pr3+[J]. Materials Research Bulletin,2020, 129:9-21.

[27] SUN R, LU P, ZHOU D L, et al. Samarium-doped metal halide perovskite nanocrystals for single-component electroluminescent white light-emitting diodes[J]. ACS Energy Letters, 2020, 5(7):2131-2139.

[28] LIU X Y, GE W Y, WANG Y F, et al. Eu3+doped Cs Pb Cl3 perovskite nanocrystalline for flexible and stretchable luminescent film[J]. Materials Letters, 2023, 339:134098-1-134098-4.

[29] YANG H X, YIN W X, DONG W, et al. Enhancing the light-emitting performance and stability in Cs Pb Br3 perovskite quantum dots via simultaneous doping and surface passivation[J]. Journal of materials Materials Chemistry:C,2020, 8(41):14439-14445.

[30] XIA Z G, MEIJERINK A. Ce3+-doped garnet phosphors:composition modification, luminescence properties and applications[J]. Chemical Society Reviews, 2017, 46(1):275-299.

[31] XIE Y J, PENG B, BRAVIC I, et al. Highly efficient blueemitting Cs Pb Br3 perovskite nanocrystals through neodymium doping[J]. Advanced Science, 2020, 7(20):2001698-1-2001698-9.

基本信息:

DOI:10.13250/j.cnki.wndz.2023.010.010

中图分类号:TB383.1

引用信息:

[1]王沐伊,李会利.稀土Er~(3+)离子掺杂的全无机CsPbCl_3钙钛矿纳米晶的合成及发光性能[J].微纳电子技术,2023,60(10):1608-1618.DOI:10.13250/j.cnki.wndz.2023.010.010.

基金信息:

检 索 高级检索

引用

GB/T 7714-2015 格式引文
MLA格式引文
APA格式引文