REFERENCES

1. Guijarro A, Yus M. The origin of chirality in the molecules of life: a revision from awareness to the current theories and perspectives of this unsolved problem. Cambridge: Royal Society of Chemistry; 2009.

2. Carreira EM, Yamamoto H. Comprehensive chirality. Elsevier: London; 2012. Available from: https://www.elsevier.com/books/comprehensive-chirality/yamamoto/978-0-08-095167-6. [Last accessed on 17 Mar 2022].

3. Stanciu CD, Hansteen F, Kimel AV, et al. All-optical magnetic recording with circularly polarized light. Phys Rev Lett 2007;99:047601.

4. Kim S, Kim E. Performance analysis of stereoscopic three-dimensional projection display systems. 3D Res 2010;1:1-16.

5. Kunnen B, Macdonald C, Doronin A, Jacques S, Eccles M, Meglinski I. Application of circularly polarized light for non-invasive diagnosis of cancerous tissues and turbid tissue-like scattering media. J Biophotonics 2015;8:317-23.

6. Krupová M, Kapitán J, Bouř P. Induced lanthanide circularly polarized luminescence as a probe of protein fibrils. ACS Omega 2019;4:1265-71.

7. Yang G, Zhang S, Hu J, Fujiki M, Zou G. The chirality induction and modulation of polymers by circularly polarized light. Symmetry 2019;11:474.

8. Qu A, Sun M, Kim JY, et al. Stimulation of neural stem cell differentiation by circularly polarized light transduced by chiral nanoassemblies. Nat Biomed Eng 2021;5:103-13.

9. Nishizawa N, Munekata H. Lateral-type spin-photonics devices: development and applications. Micromachines (Basel) 2021;12:644.

10. Zhan X, Xu FF, Zhou Z, Yan Y, Yao J, Zhao YS. 3D laser displays based on circularly polarized lasing from cholesteric liquid crystal arrays. Adv Mater 2021;33:e2104418.

11. Jiang S, Xiong X, Hu Y, et al. High-efficiency generation of circularly polarized light via symmetry-induced anomalous reflection. Phys Rev B 2015:91.

12. Zinna F, Pescitelli G, Di Bari L. Circularly polarized light at the mirror: caveats and opportunities. Chirality 2020;32:765-9.

13. Ranjbar B, Gill P. Circular dichroism techniques: biomolecular and nanostructural analyses- a review. Chem Biol Drug Des 2009;74:101-20.

14. MacKenzie LE, Pålsson LO, Parker D, Beeby A, Pal R. Rapid time-resolved circular polarization luminescence (CPL) emission spectroscopy. Nat Commun 2020;11:1676.

15. Riehl JP, Muller G. Circularly Polarized Luminescence Spectroscopy and Emission-Detected Circular Dichroism. In: Berova N, Polavarapu PL, Nakanishi K, Woody RW, editors. Comprehensive Chiroptical Spectroscopy. John Wiley & Sons, Inc.; 2011. p.65-90.

16. Sánchez-Carnerero EM, Agarrabeitia AR, Moreno F, et al. circularly polarized luminescence from simple organic molecules. Chemistry 2015;21:13488-500.

17. Ma JL, Peng Q, Zhao CH. Circularly polarized luminescence switching in small organic molecules. Chemistry 2019;25:15441-54.

18. Nitti A, Pasini D. Aggregation-induced circularly polarized luminescence: chiral organic materials for emerging optical technologies. Adv Mater 2020;32:e1908021.

19. Sang Y, Han J, Zhao T, Duan P, Liu M. Circularly polarized luminescence in nanoassemblies: generation, amplification, and application. Adv Mater 2020;32:e1900110.

20. Zhang DW, Li M, Chen CF. Recent advances in circularly polarized electroluminescence based on organic light-emitting diodes. Chem Soc Rev 2020;49:1331-43.

21. Deng Y, Wang M, Zhuang Y, Liu S, Huang W, Zhao Q. Circularly polarized luminescence from organic micro-/nano-structures. Light Sci Appl 2021;10:76.

22. Gong Z, Zhu X, Zhou Z, et al. Frontiers in circularly polarized luminescence: molecular design, self-assembly, nanomaterials, and applications. Sci China Chem 2021;64:2060-104.

23. Jiang S, Kotov NA. Circular polarized light emission in chiral inorganic nanomaterials. Adv Mater 2022:e2108431.

24. Sun M, Xu L, Qu A, et al. Site-selective photoinduced cleavage and profiling of DNA by chiral semiconductor nanoparticles. Nat Chem 2018;10:821-30.

25. Vinegrad E, Hananel U, Markovich G, Cheshnovsky O. Determination of handedness in a single chiral nanocrystal via circularly polarized luminescence. ACS Nano 2019;13:601-8.

26. Hananel U, Ben-Moshe A, Diamant H, Markovich G. Spontaneous and directed symmetry breaking in the formation of chiral nanocrystals. Proc Natl Acad Sci U S A 2019;116:11159-64.

27. Hao J, Li Y, Miao J, et al. Ligand-induced chirality in asymmetric CdSe/CdS nanostructures: a close look at chiral tadpoles. ACS Nano 2020;14:10346-58.

28. Krishnadas KR, Sementa L, Medves M, et al. Chiral functionalization of an atomically precise noble metal cluster: insights into the origin of chirality and photoluminescence. ACS Nano 2020;14:9687-700.

29. Ben-Moshe A, Govorov AO, Markovich G. Enantioselective synthesis of intrinsically chiral mercury sulfide nanocrystals. Angew Chem Int Ed Engl 2013;52:1275-9.

30. Morrow SM, Bissette AJ, Fletcher SP. Transmission of chirality through space and across length scales. Nat Nanotechnol 2017;12:410-9.

31. Kim H, Im SW, Kim RM, et al. Chirality control of inorganic materials and metals by peptides or amino acids. Mater Adv 2020;1:512-24.

32. Dryzun C, Mastai Y, Shvalb A, Avnir D. Chiral silicate zeolites. J Mater Chem 2009;19:2062.

33. Riehl JP, Richardson FS. Circularly polarized luminescence spectroscopy. Chem Rev 1986;86:1-16.

34. Moran DM, Metcalf DH, Richardson FS. Chiroptical luminescence spectra of uranyl ion in cubic sodium tris(acetato)dioxouranate(1-) crystals. Inorg Chem 1992;31:819-25.

35. Mukhina MV, Maslov VG, Baranov AV, et al. Intrinsic chirality of CdSe/ZnS quantum dots and quantum rods. Nano Lett 2015;15:2844-51.

36. Duan Y, Han L, Zhang J, et al. Optically active nanostructured ZnO films. Angew Chem Int Ed Engl 2015;54:15170-5.

37. Flack H. Chiral and achiral crystal structures. HCA ;86:905-21.

38. Gautier R, Klingsporn JM, Van Duyne RP, Poeppelmeier KR. Optical activity from racemates. Nat Mater 2016;15:591-2.

39. Zhao J, Zhang T, Dong XY, et al. Circularly polarized luminescence from achiral single crystals of hybrid manganese halides. J Am Chem Soc 2019;141:15755-60.

40. Kumar J, Thomas KG, Liz-Marzán LM. Nanoscale chirality in metal and semiconductor nanoparticles. Chem Commun (Camb) 2016;52:12555-69.

41. Tohgha U, Deol KK, Porter AG, et al. Ligand induced circular dichroism and circularly polarized luminescence in CdSe quantum dots. ACS Nano 2013;7:11094-102.

42. Maoz BM, Chaikin Y, Tesler AB, et al. Amplification of chiroptical activity of chiral biomolecules by surface plasmons. Nano Lett 2013;13:1203-9.

43. Ben-Moshe A, Maoz BM, Govorov AO, Markovich G. Chirality and chiroptical effects in inorganic nanocrystal systems with plasmon and exciton resonances. Chem Soc Rev 2013;42:7028-41.

44. Cao Z, Gao H, Qiu M, et al. Chirality transfer from sub-nanometer biochemical molecules to sub-micrometer plasmonic metastructures: physiochemical mechanisms, biosensing, and bioimaging opportunities. Adv Mater 2020;32:e1907151.

45. Lunkley JL, Shirotani D, Yamanari K, Kaizaki S, Muller G. Extraordinary circularly polarized luminescence activity exhibited by cesium tetrakis(3-heptafluoro-butylryl-(+)-camphorato) Eu(III) complexes in EtOH and CHCl3 solutions. J Am Chem Soc 2008;130:13814-5.

46. Wong H, Lo W, Yim K, Law G. Chirality and chiroptics of lanthanide molecular and supramolecular assemblies. Chem 2019;5:3058-95.

47. Staszak K, Wieszczycka K, Marturano V, Tylkowski B. Lanthanides complexes – Chiral sensing of biomolecules. Coordination Chemistry Reviews 2019;397:76-90.

48. Mackenzie LE, Pal R. Circularly polarized lanthanide luminescence for advanced security inks. Nat Rev Chem 2021;5:109-24.

49. Jiménez JR, Poncet M, Míguez-Lago S, et al. Bright long-lived circularly polarized luminescence in chiral chromium(III) complexes. Angew Chem Int Ed Engl 2021;60:10095-102.

50. Poncet M, Benchohra A, Jiménez J, Piguet C. Chiral chromium(III) complexes as promising candidates for circularly polarized luminescence. ChemPhotoChem 2021;5:880-92.

51. Ru Y, Ai L, Jia T, et al. Recent advances in chiral carbonized polymer dots: From synthesis and properties to applications. Nano Today 2020;34:100953.

52. Xu M, Wu X, Yang Y, et al. Designing hybrid chiral photonic films with circularly polarized room-temperature phosphorescence. ACS Nano 2020;14:11130-9.

53. Chekini M, Prince E, Zhao L, Mundoor H, Smalyukh II, Kumacheva E. Chiral carbon dots synthesized on cellulose nanocrystals. Adv Optical Mater 2020;8:1901911.

54. Li A, Zheng D, Zhang M, Wu B, Zhu L. Chirality transfer in carbon dot-composited Sol-gel systems for excitation-dependent circularly polarized luminescence. Langmuir 2020;36:8965-70.

55. Ru Y, Sui L, Song H, et al. Rational design of multicolor-emitting chiral carbonized polymer dots for full-color and white circularly polarized luminescence. Angew Chem Int Ed Engl 2021;60:14091-9.

56. Zhang M, Li K, Zang S. Progress in atomically precise coinage metal clusters with aggregation-induced emission and circularly polarized luminescence. Adv Optical Mater 2020;8:1902152.

57. Wu H, He X, Yang B, Li CC, Zhao L. Assembly-induced strong circularly polarized luminescence of spirocyclic chiral silver(I) clusters. Angew Chem Int Ed Engl 2021;60:1535-9.

58. Zhang MM, Dong XY, Wang ZY, et al. AIe triggers the circularly polarized luminescence of atomically precise enantiomeric copper(I) Alkynyl Clusters. Angew Chem Int Ed Engl 2020;59:10052-8.

59. Shi L, Zhu L, Guo J, et al. Self-assembly of chiral gold clusters into crystalline nanocubes of exceptional optical activity. Angew Chem Int Ed Engl 2017;56:15397-401.

60. Tao J, Li B, Lu Z, et al. Endowing zeolite lta superballs with the ability to manipulate light in multiple ways. Angew Chem Int Ed Engl 2020;59:19684-90.

61. Bobrovsky A, Mochalov K, Oleinikov V, et al. Optically and electrically controlled circularly polarized emission from cholesteric liquid crystal materials doped with semiconductor quantum dots. Adv Mater 2012;24:6216-22.

62. Yan J, Ota F, San Jose BA, Akagi K. Chiroptical resolution and thermal switching of chirality in conjugated polymer luminescence via selective reflection using a double-layered cell of chiral nematic liquid crystal. Adv Funct Mater 2017;27:1604529.

63. Wang C, Chen K, Xu P, Yeung F, Kwok H, Li G. Fully chiral light emission from Cspbx 3 perovskite nanocrystals enabled by cholesteric superstructure stacks. Adv Funct Mater 2019;29:1903155.

64. Cheng J, Hao J, Liu H, et al. Optically active CdSe-Dot/CdS-Rod nanocrystals with induced chirality and circularly polarized luminescence. ACS Nano 2018;12:5341-50.

65. Dong Y, Zhang Y, Li X, Feng Y, Zhang H, Xu J. Chiral perovskites: promising materials toward next-generation optoelectronics. Small 2019;15:e1902237.

66. Long G, Sabatini R, Saidaminov MI, et al. Chiral-perovskite optoelectronics. Nat Rev Mater 2020;5:423-39.

67. Ma S, Ahn J, Moon J. Chiral perovskites for next-generation photonics: from chirality transfer to chiroptical activity. Adv Mater 2021;33:e2005760.

68. Jin RH. Understanding silica from the viewpoint of asymmetry. Chemistry 2019;25:6270-83.

69. Matsukizono H, Jin RH. High-temperature-resistant chiral silica generated on chiral crystalline templates at neutral pH and ambient conditions. Angew Chem Int Ed Engl 2012;51:5862-5.

70. Harada T, Yanagita H, Ryu N, et al. Lanthanide ion-doped silica nanohelix: a helical inorganic network acts as a chiral source for metal ions. Chem Commun (Camb) 2021;57:4392-5.

71. Sugimoto M, Liu XL, Tsunega S, et al. Circularly polarized luminescence from inorganic materials: encapsulating guest lanthanide oxides in chiral silica hosts. Chemistry 2018;24:6519-24.

72. Tsunega S, Jin RH, Nakashima T, Kawai T. Transfer of chiral information from silica hosts to achiral luminescent guests: a simple approach to accessing circularly polarized luminescent systems. Chempluschem 2020;85:619-26.

73. Liu P, Chen W, Okazaki Y, et al. Optically active perovskite Cspbbr3 nanocrystals helically arranged on inorganic silica nanohelices. Nano Lett 2020;20:8453-60.

74. Cai X, Du J, Zhang L, et al. Circularly polarized luminescence of single-handed helical tetraphenylethylene-silica nanotubes. Chem Commun (Camb) 2019;55:12176-9.

75. Zhang W, Chang H, Ai J, Che S, Duan Y, Han L. Spontaneous chiral self-assembly of achiral AIEgens into AIEgen-silica hybrid nanotubes. Chem Commun (Camb) 2019;55:14438-41.

76. Zhang S, Shi W, Rong S, Li S, Zhuang J, Wang X. Chirality evolution from Sub-1 nanometer nanowires to the macroscopic helical structure. J Am Chem Soc 2020;142:1375-81.

77. Yang X, Zhou M, Wang Y, Duan P. Electric-field-regulated energy transfer in chiral liquid crystals for enhancing upconverted circularly polarized luminescence through steering the photonic bandgap. Adv Mater 2020;32:e2000820.

78. Zinna F, Arrico L, Di Bari L. Near-infrared circularly polarized luminescence from chiral Yb(iii)-diketonates. Chem Commun (Camb) 2019;55:6607-9.

79. Frédéric L, Desmarchelier A, Favereau L, Pieters G. Designs and applications of circularly polarized thermally activated delayed fluorescence molecules. Adv Funct Mater 2021;31:2010281.

80. Han Z, Dong XY, Luo P, et al. Ultrastable atomically precise chiral silver clusters with more than 95% quantum efficiency. Sci Adv 2020;6:eaay0107.

81. Hao W, Li Y, Liu M. Endowing phosphor materials with long-afterglow circularly polarized phosphorescence via ball milling. Adv Optical Mater 2021;9:2100452.

82. Suo Z, Hou X, Chen J, et al. Highly chiroptical detection with gold-silver bimetallic nanoclusters circularly polarized luminescence based on G-quartet nanofiber self-assembly. J Phys Chem C 2020;124:21094-102.

83. Kitagawa Y, Wada S, Islam MDJ, et al. Chiral lanthanide lumino-glass for a circularly polarized light security device. Commun Chem 2020:3.

84. Zinna F, Giovanella U, Di Bari L. Highly circularly polarized electroluminescence from a chiral europium complex. Adv Mater 2015;27:1791-5.

85. Zinna F, Pasini M, Galeotti F, Botta C, Di Bari L, Giovanella U. Design of Lanthanide-based oleds with remarkable circularly polarized electroluminescence. Adv Funct Mater 2017;27:1603719.

86. Han Z, Zhao X, Peng P, et al. Intercluster aurophilicity-driven aggregation lighting circularly polarized luminescence of chiral gold clusters. Nano Res 2020;13:3248-52.

87. Juan A, Sun H, Qiao J, Guo J. Near-infrared light-controlled circularly polarized luminescence of self-organized emissive helical superstructures assisted by upconversion nanoparticles. Chem Commun (Camb) 2020;56:13649-52.

88. Jin X, Sang Y, Shi Y, et al. Optically Active Upconverting nanoparticles with induced circularly polarized luminescence and enantioselectively triggered photopolymerization. ACS Nano 2019;13:2804-11.

89. Longhi G, Castiglioni E, Koshoubu J, Mazzeo G, Abbate S. circularly polarized luminescence: a review of experimental and theoretical aspects. Chirality 2016;28:696-707.

90. Chen W, Tian Z, Li Y, Jiang Y, Liu M, Duan P. Long-persistent circularly polarized phosphorescence from chiral organic ionic crystals. Chemistry 2018;24:17444-8.

91. Tanaka H, Inoue Y, Mori T. Circularly polarized luminescence and circular dichroisms in small organic molecules: correlation between excitation and emission dissymmetry factors. ChemPhotoChem 2018;2:386-402.

92. Castiglioni E, Abbate S, Lebon F, Longhi G. Ultraviolet, circular dichroism, fluorescence, and circularly polarized luminescence spectra of regioregular poly-[3-((S)-2-methylbutyl)-thiophene] in solution. Chirality 2012;24:725-30.

93. Harada T, Kuroda R, Moriyama H. Solid-state circularly polarized luminescence measurements: theoretical analysis. Chemical Physics Letters 2012;530:126-31.

94. Kumar J, Nakashima T, Tsumatori H, Kawai T. Circularly polarized luminescence in chiral aggregates: dependence of morphology on luminescence dissymmetry. J Phys Chem Lett 2014;5:316-21.

95. Zhang C, Li S, Dong X, Zang S. Circularly polarized luminescence of agglomerate emitters. Aggregate 2021:2.

96. Zhao S, Yu Y, Zhang B, et al. Metal-Enhanced circularly polarized luminescence of self-assembled Au@SiO2 triangular nanoprisms and fluorophores in chiral cellulose nanocrystal films. Adv Optical Mater 2021;9:2100907.

97. Greenfield JL, Wade J, Brandt JR, Shi X, Penfold TJ, Fuchter MJ. Pathways to increase the dissymmetry in the interaction of chiral light and chiral molecules. Chem Sci 2021;12:8589-602.

98. Yao L, Niu G, Li J, et al. Circularly polarized luminescence from chiral tetranuclear copper(I) iodide clusters. J Phys Chem Lett 2020;11:1255-60.

99. Arrico L, Di Bari L, Zinna F. Quantifying the overall efficiency of circularly polarized emitters. Chemistry 2021;27:2920-34.

Chemical Synthesis
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