CC BY 4.0 · Organic Materials 2023; 5(01): 1-20
DOI: 10.1055/s-0042-1757980
Organic Materials in India
Review

A Review on the Milestones of Blue Light-Emitting Materials in India

1   Tarsadia Institute of Chemical Science (TICS), Uka Tarsadia University, Bardoli – 394 350, Gujarat, India
,
1   Tarsadia Institute of Chemical Science (TICS), Uka Tarsadia University, Bardoli – 394 350, Gujarat, India
,
1   Tarsadia Institute of Chemical Science (TICS), Uka Tarsadia University, Bardoli – 394 350, Gujarat, India
,
1   Tarsadia Institute of Chemical Science (TICS), Uka Tarsadia University, Bardoli – 394 350, Gujarat, India
› Author Affiliations


Abstract

Since 1987 in the field of optoelectronics, organic light-emitting diodes (OLEDs) have secured their position because of their extreme use in panels of lighting applications such as TV and smartphone displays. At present, OLEDs are at top-notch position in the lighting market for their promising features. The field of OLEDs is rapidly growing day by day in academia and industry due to the success of OLEDs in the form of excellent efficiency, feasible methods, excellent lifetime, color purity, and superb device architecture. As a result, OLEDs are new profitable leading devices of the 21st century. However, the OLED industry has evolved in optoelectronics in the last 30 years and is advancing rapidly just because of the development in OLED materials (fluorescent, phosphorescent, thermally activated delayed fluorescent, and blue light-emitting materials). Blue light-emitting materials have achieved incredible popularity nationally and internationally. At the international level, USA, Japan, Korea, and Germany are at the top of the list in the production of OLEDs. India has also seen rapid progress in OLED development in the last 12 years and details of research in blue OLEDs by key players of India are involved in this report.

1 Introduction

1.1 OLED Construction

1.2 Working of OLED

2 OLED Development

2.1 Historical Background of OLED

2.1.1 International Status

2.1.2 National Status

3 Progress of Blue Emitters in India

4 Present Scenario of Blue OLEDs

5 Conclusions and Outlook



Publication History

Received: 23 July 2022

Accepted after revision: 09 November 2022

Article published online:
25 January 2023

© 2023. The authors. This is an open access article published by Thieme under the terms of the Creative Commons Attribution License, permitting unrestricted use, distribution, and reproduction so long as the original work is properly cited. (https://creativecommons.org/licenses/by/4.0/).

Georg Thieme Verlag KG
Rüdigerstraße 14, 70469 Stuttgart, Germany

 
  • Bibliography

  • 1 Motoyama Y, Sugiyama K, Tanaka H, Tsuchioka H, Matsusaki K, Fukumoto H. J. Soc. Inf. Disp. 2019; 27: 354
  • 2 Cooper EA, Jiang H, Vildavski V, Farrell JE, Norcia AM. J. Visualization 2013; 13: 16
  • 3 Kalyani NT, Dhoble SJ. Renewable Sustainable Energy Rev. 2015; 44: 319
  • 4 Li N, Bedell S, Tulevski GS, Oida S, Sadana D. SID Symposium Digest of Technical Papers. Wiley Online Library; Hoboken: 2013. 44. 848
  • 5 Sain N, Sharma D, Choudhary PA. Int. J. Eng. Appl. Sci. Technol. 2020; 4: 587
  • 6 Fröbel M, Fries F, Schwab T, Lenk S, Leo K, Gather MC, Reineke S. Sci. Rep. 2018; 8: 1
  • 7 Xia Y, Wan OY, Cheah KW. Opt. Mater. Express 2016; 6: 1905
  • 8 Yang X, Xu X, Zhou G. J. Mater. Chem. C 2015; 3: 913
  • 9 Sudheendran Swayamprabha S, Dubey DK, Yadav R. Adv. Sci. 2021; 8: 2002254
  • 10 Ooyama Y, Harima Y. Eur. J. Org. Chem. 2009; 2009: 2903
  • 11 Adachi C, Sandanayaka ASD. CCS Chem. 2020; 2: 1203
  • 12 Koden M. OLED Displays and Lighting. John Wiley & Sons; Hoboken: 2016
  • 13 Fleuster M, Klein M, Roosmalen PV, Wit AD, Schwab H. Dig. Tech. Pap. – Soc. Inf. Disp. Int. Symp. 2004; 35: 1276
  • 14 Hamer JW, Yamamoto A, Rajeswaran G, Van Slyke SA. Dig. Tech. Pap. – Soc. Inf. Disp. Int. Symp. 2005; 36: 1902
  • 15 Rodella F. Dissertation. University of Beirut; 2022
  • 16 Gueymard CA. Sol. Energy 2009; 83: 432
  • 17 Kobayashi T, Kanematsu H, Hashimoto R, Morisato K, Ohashi N, Yamasaki H, Takamiya S. Int. J. Sustain. Dev. World Policy 2013; 2: 50
  • 18 Pode R. Renewable Sustainable Energy Rev. 2020; 133: 110043
  • 19 Pan T, Zhang Y, Wang C, Gao H, Wen B, Yao B. Compos. Sci. Technol. 2020; 188: 107991
  • 20 Kirkendall E, Huth H, Rauenbuehler B, Moses A, Melton K, Ni Y. JMIR Med. Inf. 2020; 8: e22031
  • 21 Schwartz C, Sarlette R, Weinmann M, Rump M, Klein R. Sensors 2014; 14: 7753
  • 22 Lagouvardou S, Psaraftis HN, Zis T. Sustainability 2020; 12: 3953
  • 23 Hong G, Gan X, Leonhardt C, Zhang Z, Seibert J, Busch JM, Bräse S. Adv. Mater. 2021; 33: 2005630
  • 24 Hung LS, Chen CH. Mater. Sci. Eng. R Rep. 2002; 39: 143
  • 25 Anonymous. Br. Dent. J. 2020; 228: 896
  • 26 Sharma H, Kakkar R, Bishnoi S, Milton MD. J. Photochem. Photobiol., A 2022; 430: 113944
  • 27 Jayabharathi J, Thilagavathy S, Thanikachalam V, Anudeebhana J. J. Mater. Chem. C 2022; 10: 4342
  • 28 Tagare J, Yadav RAK, Swayamprabha SS, Dubey DK, Jou J-H, Vaidyanathan S. J. Mater. Chem. C 2021; 9: 4935
  • 29 Kim JH, Lee KH, Lee JY. J. Mater. Chem. C 2020; 8: 5265
  • 30 Karthik D, Thomas KRJ, Jou J-H, Kumar S, Chen Y-L, Jou Y-C. RSC Adv. 2015; 5: 8727
  • 31 Kumar S, Patil S. J. Phys. Chem. C 2015; 119: 19297
  • 32 Dahule HK, Thejokalyani N, Dhoble SJ. Luminescence 2015; 30: 405
  • 33 Kumar S, Patil S. New J. Chem. 2015; 39: 6351
  • 34 Nishal V, Singh D, Saini RK, Tanwar V, Kadyan S, Srivastava R, Kadyan PS. Cogent Chem. 2015; 1: 1079291
  • 35 Gupta N, Grover R, Mehta DS, Saxena K. Displays 39: 104
  • 36 Lakshmanan R, Shivaprakash NC, Nair SS. J. Lumin. 2015; 168: 145
  • 37 Jadhav T, Choi JM, Dhokale B, Mobin SM, Lee JY, Misra R. J. Phys. Chem. C 2016; 120: 18487
  • 38 Jhulki S, Seth S, Ghosh A, Chow TJ, Moorthy JN. ACS Appl. Mater. Interfaces 2016; 8: 1527
  • 39 Rajamalli P, Senthilkumar N, Gandeepan P, Ren-Wu CC, Lin HW, Cheng CH. ACS Appl. Mater. Interfaces 2016; 8: 27026
  • 40 Kumar S, Kumar D, Patil Y, Patil S. J. Mater. Chem. C 2016; 4: 193
  • 41 Gupta M, Pal SK. Langmuir 2016; 32: 1120
  • 42 Rajamalli P, Senthilkumar N, Gandeepan P, Huang PY, Huang MJ, Ren-Wu CZ, Yang CY, Chiu MJ, Chu LK, Lin HW. J. Am. Chem. Soc. 2016; 138: 628
  • 43 Pathak SK, Pradhan B, Gupta M, Pal SK, Sudhakar AA. Langmuir 2016; 32: 9301
  • 44 Pathak SK, Gupta M, Pal SK, Achalkumar AS. ChemistrySelect 2016; 1: 5107
  • 45 Thanikachalam V, Jeeva P, Jayabharathi J, Ramanathan P, Prabhakaran A, Saroj Purani E. Ind. Eng. Chem. Res. 2016; 55: 9639
  • 46 Urinda S, Das G, Pramanik A, Sarkar P. Comput. Theor. Chem. 2016; 1092: 32
  • 47 Valsange NG, Wong FL, Shinde D, Lee CS, Roy VAL, Manzhos S, Feron K, Chang S, Katoh R, Sonar PA. New J. Chem. 2017; 41: 11383
  • 48 Chaudhary S, Mukherjee M, Paul TK, Bishnoi S, Taraphder S, Milton MD. ChemistrySelect 2018; 3: 5073
  • 49 Gopikrishna P, Meher N, Iyer PK. ACS Appl. Mater. Interfaces 2017; 10: 12081
  • 50 Jayabharathi J, Sujatha P, Thanikachalam V, Jeeva P, Nethaji P. RSC Adv. 2017; 7: 54078
  • 51 Joseph V, Thomas KRJ, Singh M, Sahoo S, Jou J. Eur. J. Org. Chem. 2017; 2017: 6660
  • 52 Konidena RK, Thomas KRJ, Dubey DK, Sahoo S, Jou JH. Chem. Commun. 2017; 53: 11802
  • 53 Thanikachalam V, Sarojpurani E, Jayabharathi J, Jeeva P. New J. Chem. 2017; 41: 2443
  • 54 Matta A, Gupta M, Kumar Y, Taniike T, Van der Eycken J, Singh BK. ChemistrySelect 2018; 3: 10815
  • 55 Bala I, Ming L, Yadav RAK, De J, Dubey DK, Kumar S, Singh H, Jou J, Kailasam K, Pal SK. ChemistrySelect 2018; 3: 7771
  • 56 Ghate M, Kalyani NT, Dhoble SJ. Luminescence 2018; 33: 999
  • 57 Gupta RK, Ulla H, Satyanarayan MN, Sudhakar AA. Eur. J. Org. Chem. 2018; 2018: 1608
  • 58 Sharma R, Volyniuk D, Popli C, Bezvikonnyi O, Grazulevicius JV, Misra R. J. Phys. Chem. C 2018; 122: 15614
  • 59 Siddiqui QT, Awasthi AA, Bhui P, Muneer M, Chandrakumar KRS, Bose S, Agarwal N. J. Phys. Chem. C 2018; 123: 1003
  • 60 Tagare J, Ulla H, Satyanarayan MN, Vaidyanathan S. J. Photochem. Photobiol., A 2018; 353: 53
  • 61 Venkatramaiah N, Kumar GD, Chandrasekaran Y, Ganduri R, Patil S. ACS Appl. Mater. Interfaces 2018; 10: 3838
  • 62 Manohara HM, Devaiah CT, Hemavathi B, Ahipa TN. J. Lumin. 2019; 206: 284
  • 63 Kadam VS, Bhatt PA, Karmakar HS, Zade SS, Patel AL. ChemistrySelect 2019; 4: 3948
  • 64 Tagare J, Dubey DK, Jou J, Vaidyanathan S. ChemistrySelect 2019; 4: 6458
  • 65 Kajjam AB, Dubey DK, Yadav RAK, Jou JH, Sivakumar V. Mater. Today Chem. 2019; 14: 100201
  • 66 Jayabharathi J, Nethaji P, Thanikachalam V, Ramya R. ACS Omega 2019; 4: 4553
  • 67 Bala I, Yang W-Y, Gupta SP, De J, Yadav RAK, Singh DP, Dubey DK, Jou J-H, Douali R, Pal SK. J. Mater. Chem. C 2019; 7: 5724
  • 68 Awasthi AA, Gupta N, Siddiqui QT, Parab P, Palit DK, Bose S, Agarwal N. J. Chem. Sci. 2019; 131: 1
  • 69 Das S, Okamura N, Yagi S, Ajayaghosh A. J. Am. Chem. Soc. 2019; 141: 5635
  • 70 Mahadik SS, Chacko S, Kamble RM. ChemistrySelect 2019; 4: 10021
  • 71 Najare MS, Patil MK, Nadaf AA, Mantur S, Inamdar SR, Khazi IAM. Opt. Mater. (Amst). 2019; 88: 256
  • 72 Ravindra MK, Mahadevan KM, Basavaraj RB, Darshan GP, Sharma SC, Raju MS, Vijayakumar GR, Manjappa KB, Yang DY, Nagabhushana H. Mater. Sci. Eng., C 2019; 101: 564
  • 73 Tagare J, Dubey DK, Jou JH, Vaidyanathan S. Dyes Pigm. 2019; 160: 944
  • 74 Tagare J, Dubey DK, Yadav RAK, Jou JH, Vaidyanathan S. Mater. Adv. 2020; 1: 666
  • 75 Patil VV, Lee KH, Lee JY. Chem. Eng. J. 2020; 395: 125125
  • 76 Karuppusamy A, Kannan P. Chem. Phys. Lett. 2020; 745: 137241
  • 77 Jayabharathi J, Sivaraj S, Thanikachalam V, Anudeebhana J. Mater. Adv. 2021; 2: 6388
  • 78 Dixit SJN, Gupta C, Tadavi TH, Chandrakumar KRS, Bose S, Agarwal N. New J. Chem. 2021; 45: 16238
  • 79 Sharma A, Balasaravanan R, Thomas KRJ, Ram M, Dubey DK, Yadav RAK, Jou JH. Dyes Pigm. 2021; 184: 108830
  • 80 Tagare J, Boddula R, Yadav RAK, Dubey DK, Jou JH, Patel S, Vaidyanathan S. Dyes Pigm. 2021; 185: 108853
  • 81 Vasylieva M, Pander P, Sharma BK, Shaikh AM, Kamble RM, Dias FB, Czichy M, Data P. Electrochim. Acta 2021; 384: 138347
  • 82 Najare MS, Patil MK, Garbhagudi M, Yaseen M, Inamdar SR, Khazi IAM. J. Mol. Liq. 2021; 328: 115443
  • 83 Kumar N, Alghamdi AA, Mahadevan KM, Nagaraju G. J. Mol. Struct. 2021; 1223: 129208
  • 84 Sk B, Ravindran E, Deori U, Yadav N, Nanda GP, Rajamalli P. J. Mater. Chem. C 2022; 10: 4886
  • 85 Girase JD, Rani Nayak S, Tagare J, Shahnawaz Shahnawaz, Ram Nagar M, Jou JH, Vaidyanathan S. J. Inf. Disp. 2022; 23: 53
  • 86 Thomas KRJ, Nagar MR, Jou J-H. J. Photochem. Photobiol., A 2022; 423: 113600
  • 87 Girase JD, Nagar MR, Jayakumar J, Jou JH, Vaidyanathan S. J. Lumin. 2022; 248: 118992
  • 88 Mazumdar AK, Nanda GP, Yadav N, Deori U, Acharyya U, Sk B, Rajamalli P. Beilstein J. Org. Chem. 2022; 18: 1177
  • 89 Vasilopoulou M, Mohd Yusoff ARbin, Daboczi M, Conforto J, Gavim AEX, da Silva WJ, Macedo AG, Soultati A, Pistolis G, Schneider FK, Dong Y, Jacoutot P, Rotas G, Jang J, Vougioukalakis GC, Chochos CL, Kim JS, Gasparini N. Nat. Commun. 2021; 12: 1
  • 90 Jeon SO, Lee KH, Kim JS, Ihn SG, Chung YS, Kim JW, Lee H, Kim S, Choi H, Lee JY. Nat. Photonics 2021; 15: 208