Page 22 - MSAM-2-2
P. 22
Materials Science in Additive Manufacturing Union of 2D nanomaterials and 3D printing
https://doi.org/10.1002/adma.201603864 carbons from powdered samples using clays as binders for
the adsorption of organic vapours. Microporous Mesoporous
44. Li Y, Liu Z, Hou Y, et al., 2017, Multifunctional nanoplatform
based on black phosphorus quantum dots for bioimaging Mater, 93: 226–231.
and photodynamic/photothermal synergistic cancer 59. Ahmad HM, Iqbal T, Al Harthi MA, et al., 2021, Synergistic
therapy. ACS Appl Mater Interfaces, 9: 25098–25106. effect of polymer and nanoparticles on shale hydration
and swelling performance of drilling fluids. J Pet Sci Eng,
45. Ghadiri M, Chrzanowski W, Rohanizadeh R, 2014,
Antibiotic eluting clay mineral (Laponite ) for wound 205: 108763.
®
healing application: An in vitro study. J Mater Sci Mater Med, 60. Huang X, Lv K, Sun J, et al., 2019, Enhancement of thermal
25: 2513–2526. stability of drilling fluid using laponite nanoparticles under
https://doi.org/10.1007/s10856-014-5272-7 extreme temperature conditions. Mater Lett, 248: 146–149.
46. Wu Z, Huang X, Li YC, et al., 2018, Novel chitosan films 61. Wu Y, Guo R, Wen S, et al., 2014, Folic acid-modified
with laponite immobilized Ag nanoparticles for active food laponite nanodisks for targeted anticancer drug delivery.
packaging. Carbohydr Polym, 199: 210–218. J Mater Chem B, 2: 7410–7418.
https://doi.org/10.1016/j.carbpol.2018.07.030 62. Wang G, Maciel D, Wu Y, et al., 2014, Amphiphilic polymer-
mediated formation of laponite-based nanohybrids with
47. Fatnassi M, Es-Souni M, 2015, Nanoscale phase separation robust stability and pH sensitivity for anticancer drug
in laponite-polypyrrole nanocomposites. Application to delivery. ACS Appl Mater Interfaces, 6: 16687–16695.
electrodes for energy storage. RSC Adv, 5: 21550–21557.
63. Yu D, Ma M, Liu Z, et al., 2020, MOF-encapsulated
48. Kiaee G, Dimitrakakis N, Sharifzadeh S, et al., 2022, nanozyme enhanced siRNA combo: Control neural stem
Laponite‐based nanomaterials for drug delivery. Adv cell differentiation and ameliorate cognitive impairments in
Healthc Mater, 11: e2102054. Alzheimer’s disease model. Biomaterials, 255: 120160.
https://doi.org/10.1002/adhm.202102054 https://doi.org/10.1016/j.biomaterials.2020.120160
49. Mongondry P, Tassin JF, Nicolai T, 2005, Revised state 64. Khongkow M, Yata T, Boonrungsiman S, et al., 2019, Surface
diagram of Laponite dispersions. J Colloid Interface Sci, modification of gold nanoparticles with neuron-targeted
283: 397–405. exosome for enhanced blood–brain barrier penetration. Sci
50. Jatav S, Joshi YM, 2014, Chemical stability of Laponite in Rep, 9: 8278.
aqueous media. Appl Clay Sci, 97: 72–77. https://doi.org/10.1038/s41598-019-44569-6
51. Mohanty RP, Joshi YM, 2016, Chemical stability phase 65. Lavoie-Cardinal F, Salesse C, Bergeron É, et al., 2016. Gold
diagram of aqueous Laponite dispersions. Appl Clay Sci, nanoparticle-assisted all optical localized stimulation and
119: 243–248. monitoring of Ca signaling in neurons. Sci Rep, 6: 20619.
2+
52. Thompson DW, Butterworth JT, 1992, The nature of https://doi.org/10.1038/srep20619
laponite and its aqueous dispersions. J Colloid Interface Sci,
151: 236–243. 66. Wang S, Qiu J, Guo,W, et al., 2017. A nanostructured
molybdenum disulfide film for promoting neural stem cell
53. Dávila JL, d’Ávila MA, 2017, Laponite as a rheology modifier neuronal differentiation: Toward a nerve tissue‐engineered
of alginate solutions: Physical gelation and aging evolution. 3D scaffold. Adv Biosyst, 1: e1600042.
Carbohydr Polym, 157: 1–8.
https://doi.org/10.1002/adbi.201600042
54. Kästner U, 2001, The impact of rheological modifiers on
water-borne coatings. Colloids and Surfaces A Physicochem 67. Goldman EB, Zak A, Tenne R, et al., 2015, Biocompatibility
Eng Aspects, 183: 805–821. of tungsten disulfide inorganic nanotubes and fullerene-like
nanoparticles with salivary gland cells. Tissue Eng Part A,
55. Bryant SJ, Calabrese V, Da Silva MA, et al., 2021, Rheological 21: 1013–1023.
modification of partially oxidised cellulose nanofibril gels
with inorganic clays. PLos One, 16: e0252660. https://doi.org/10.1089/ten.TEA.2014.0163
56. Li X, Liu A, Ye R, et al., 2015, Fabrication of gelatin-laponite 68. Wang QH, Kalantar-Zadeh K, Kis A, et al., 2012, Electronics
composite films: Effect of the concentration of laponite on and optoelectronics of two-dimensional transition metal
physical properties and the freshness of meat during storage. dichalcogenides. Nat Nanotechnol, 7: 699–712.
Food Hydrocoll, 44: 390–398.
69. Stavrou M, Stathis A, Papadakis I, et al., 2022, Silicon
57. Guo R, Wang J, Zhang S, et al., 2020, Multifunctional nanosheets: An emerging 2D photonic material with a large
cross-linked polymer-Laponite nanocomposite binder for transient nonlinear optical response beyond graphene.
lithium-sulfur batteries. Chem Eng J, 388: 124316. Nanomaterials, 12: 90.
58. Carvalho A, Mestre A, Pires J, et al., 2006, Granular activated 70. Ma L, Song X, Yu Y, et al., 2021, Two‐dimensional silicene/
Volume 2 Issue 2 (2023) 16 https://doi.org/10.36922/msam.0620

