Citation: Wang Huan, Shang Luoran, Rong Fei, Gu Zhongze, Zhao Yuanjin. Colloidal Crystal Beads with Biomedical Applications[J]. Chemistry, ;2017, 80(3): 219-227. shu

Colloidal Crystal Beads with Biomedical Applications

  • Corresponding author: Zhao Yuanjin, yjzhao@seu.edu.cn
  • Received Date: 16 October 2016
    Accepted Date: 20 November 2016

Figures(12)

  • Colloidal photonic crystals (PhCs) are periodically arranged monodisperse nanoparticles and have photonic band gaps (PBGs). Light with certain wavelength or frequencies located in the PBG is prohibited from propagating. Because of this special property, the fabrication and application of colloidal PhCs have attracted increasing interests of researchers. However, the angle dependence is disadvantageous for the construction of some optical materials and devices in which wide viewing angles are desired. Recently, a series of colloidal PhC materials with spherical macroscopic morphology have been created. Because of their spherical symmetry, the PBGs of spherical colloidal PhCs are independent of rotation under illumination of the surface at a fixed incident angle of the light, broadening the perspective of their applications. Because microfluidics has been used for the generation of the droplet templates, the development of spherical colloidal PhCs has progressed significantly. These new strategies not only ensure monodispersity, but also increase the structural and functional diversity of the PhC beads (PCBs). These novel PCBs provide a bridge between PhCs materials and biomedical applications such as barcodes, label-free detection, cell culture and drug delivery, and this also leads PCBs to far-ranging real-world applications. In this review, we present the research progress in PCBs, including their design, preparation and potential applications. Future developments of the PCB materials are also envisioned.
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    1. [1]

      E Yablonovitch. Phys. Rev. Lett., 1987, 58(20):2059-2062. 

    2. [2]

      S John. Phys. Rev. Lett., 1987, 58(23):2486-2489. 

    3. [3]

      G Freymann, V Kitaev, B V Lotsch et al. Chem. Soc. Rev., 2013, 42(7):2528-2554. 

    4. [4]

      Y Z Zhang, J X Wang, Y Huang et al. J. Mater. Chem., 2011, 21(37):14113-14126. 

    5. [5]

      J X Wang, Y Z Zhang, S T Wang et al. Acc. Chem. Res., 2011, 44(6):405-415. 

    6. [6]

      L He, M S Wang, J P Ge et al. Acc. Chem. Res., 2012, 45(9):1431-1440. 

    7. [7]

      O Sato, S Kubo, Z Z Gu. Acc. Chem. Res., 2009, 42(1):1-10. 

    8. [8]

      Y J Zhao, Z Y Xie, H C Gu et al. Chem. Soc. Rev., 2012, 41(8):3297-3317. 

    9. [9]

      S H Park, Y Xia. Langmuir, 1999, 15(1):266-273. 

    10. [10]

      Z Z Gu, Q B Meng, S Hayami et al. J. Appl. Phys., 2001, 90(4):2042-2044. 

    11. [11]

      H C Gu, Y J Zhao, Y Cheng et al. Small, 2013, 9(13):2266-2271. 

    12. [12]

      O D Velev, A M Lenhoff, E W Kaler. Science, 2000, 287(5461):2240-2243. 

    13. [13]

      O D Velev, S Gupta. Adv. Mater., 2009, 21(19):1897-1905. 

    14. [14]

      H Wang, Q H Xu, L R Shang et al. Chem. Commun., 2016, 52(16):3296-3299. 

    15. [15]

      X W Zhao, Y Cao, F Ito et al. Angew. Chem. Int. Ed., 2006, 45(41):6835-6838. 

    16. [16]

      V Rastogi, S Melle, O G Calderon et al. Adv. Mater., 2008, 20(22):4263-4268. 

    17. [17]

      Y Masuda, T Itoh, K Koumoto, Adv. Mater., 2005, 17(7):841-845.

    18. [18]

      C Sun, X W Zhao, Y J Zhao et al. Small, 2008, 4(5):592-596. 

    19. [19]

      H C Gu, F Rong, B C Tang et al. Langmuir, 2013, 29(25):7576-7582. 

    20. [20]

      S H Kim, S Y Lee, G R Yi et al. J. Am. Chem. Soc., 2006, 128(33):10897-10904. 

    21. [21]

      K Xu, J H Xu, Y C Lu et al. Cryst. Growth Des., 2013, 13(2):926-935. 

    22. [22]

      Y J Zhao, X W Zhao, C Sun et al. Anal. Chem., 2008, 80(5):1598-1605. 

    23. [23]

      J Hu, X W Zhao, Y J Zhao et al. J. Mater. Chem., 2009, 19(32):5730-5736. 

    24. [24]

      J P Ge, H Lee, L He et al. J. Am. Chem. Soc., 2009, 131(43):15687-15694. 

    25. [25]

      T Kanai, D Lee, H C Shum et al. Small, 2010, 6(7):807-810. 

    26. [26]

      S H Kim, S J Jeon, G R Yi et al. Adv. Mater., 2008, 20(9):1649-1655. 

    27. [27]

      Y J Zhao, L R Shang, Y Cheng et al. Acc. Chem. Res., 2014, 47(12):3632-3642. 

    28. [28]

      Y J Zhao, X W Zhao, B C Tang et al. Adv. Funct. Mater., 2010, 20(6):976-982. 

    29. [29]

      Y C Kim, C Y Cho, J H Kang et al. Langmuir, 2012, 28(28):10543-10550. 

    30. [30]

      J Y Wang, Y D Hu, R Deng et al. Langmuir, 2013, 29(28):8825-8834. 

    31. [31]

      J C Cui, W Zhu, N Gao et al. Angew. Chem. Int. Ed., 2014, 53(15):3844-3848. 

    32. [32]

      Y J Zhao, X W Zhao, B C Tang et al. Langmuir, 2010, 26(9):6111-6114. 

    33. [33]

      G R Yi, J H Moon, S M Yang. Chem. Mater., 2001, 13(8):2613-2618. 

    34. [34]

      J H Moon, G R Yi, S M Yang et al. Adv. Mater., 2004, 16(7):605-609. 

    35. [35]

      Y J Zhao, X W Zhao, J Hu et al. Adv. Mater., 2009, 21(5):569-572. 

    36. [36]

      Q Yang, M Z Li, J Liu et al. J. Mater. Chem. A, 2013, 1(3):541-547. 

    37. [37]

      S H Hong, J H Moon, J M Lim et al. Langmuir, 2005, 21(23):10416-10421. 

    38. [38]

      J R Millman, K H Bhatt, B G Prevo et al. Nat. Mater., 2005, 4(1):98-102.

    39. [39]

      V Rastogi, A A Garcıa, M Marquez et al. Macromol. Rapid Commun., 2010, 31(2):190-195.

    40. [40]

      L R Shang, F Q Shangguan, Y Cheng et al. Nanoscale, 2013, 5(20):9553-9557. 

    41. [41]

      Y J Zhao, H C Gu, Z Y Xie et al. J. Am. Chem. Soc., 2013, 135(1):54-57. 

    42. [42]

      Z Y Yu, C F Wang, L T Ling et al. Angew. Chem. Int. Ed., 2012, 51(10):2375-2378. 

    43. [43]

      S H Kim, S J Jeon, W C Jeong et al. Adv. Mater., 2008, 20(21):4129-4134.

    44. [44]

      Y J Zhao, Z Y Xie, H C Gu et al. NPG Asia Mater., 2012, 4(9):e25.

    45. [45]

      S H Kim, S J Jeon, S M Yang. J. Am. Chem. Soc., 2008, 130(18):6040-6046. 

    46. [46]

      S H Kim, J G Park, T M Choi et al. Nat. Commun., 2014, 5:3068.

    47. [47]

      Y D Hu, J Y Wang, H Wang et al. Langmuir, 2012, 28(49):17186-17192. 

    48. [48]

      T Kanai, D Lee, H C Shum et al. Adv. Mater., 2010, 22(44):4998-5002. 

    49. [49]

      F F Fu, L R Shang, F Y Zheng et al. ACS Appl. Mater. Inter., 2016, 8(22):13840-13848. 

    50. [50]

      B F Ye, H B Ding, Y Cheng et al. Adv. Mater., 2014, 26(20):3270-3274. 

    51. [51]

      L R Shang, Y Cheng, J Wang et al. Lab Chip, 2016, 16(2):251-255. 

    52. [52]

      L R Shang, F F Fu, Y Cheng et al. J. Am. Chem. Soc., 2015, 137(49):15533-15539. 

    53. [53]

      D G Shchukin, E Skorb, V Belova et al. Adv. Mater., 2011, 23(17):1922-1934. 

    54. [54]

      S A Nabavi, G T Vladisavljevic, S Gu et al. Langmuir, 2016, 32(38):9826-9835. 

    55. [55]

      K Ando, A Q Liu, C D Ohl. Phys. Rev. Lett., 2012, 109(4):044501. 

    56. [56]

      O Vincent, P Marmottant, S R Gonzalez-Avila et al. Soft Matter, 2014, 10(10):1455-1461. 

    57. [57]

      Y J Zhao, X W Zhao, Z Z Gu. Adv. Funct. Mater., 2010, 20(18):2970-2988. 

    58. [58]

      Y J Zhao, X W Zhao, X P Pei et al. Anal. Chim. Acta, 2009, 633(1):103-108. 

    59. [59]

      Z Y Xie, K D Cao, Y J Zhao et al. Adv. Mater., 2014, 26(15):2413-2418. 

    60. [60]

      Y J Zhao, X W Zhao, J Hu et al. Angew. Chem. Int. Ed., 2009, 48(40):7350-7352. 

    61. [61]

      J P Ge, Y D Yin. Angew. Chem. Int. Ed., 2011, 50(7):1492-1522. 

    62. [62]

      W Z Shen, M Z Li, C Q Ye et al. Lab Chip, 2012, 12(17):3089-3095. 

    63. [63]

      B F Ye, F Rong, H C Gu et al. Chem. Commun., 2013, 49(46):5331-5333. 

    64. [64]

      W Liu, L R Shang, F Y Zheng et al. Small, 2014, 10(1):88-93. 

    65. [65]

      F Y Zheng, Y Cheng, J Wang et al. Adv. Mater., 2014, 26(43):7333-7338. 

    66. [66]

      B Zhang, Y L Cai, L R Shang et al. Nanoscale, 2016, 8(6):3841-3847. 

    67. [67]

      B Zhang, Y Cheng, H Wang et al. Nanoscale, 2015, 7(24):10590-10594. 

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