TY - JOUR
T1 - Self-assembled supermolecular aggregate supported on boron nitride nanoplatelets for flame retardant and friction application
AU - Qiu, Shuilai
AU - Hou, Yanbei
AU - Xing, Weiyi
AU - Ma, Chao
AU - Zhou, Xia
AU - Liu, Longxiang
AU - Kan, Yongchun
AU - Yuen, Richard K.K.
AU - Hu, Yuan
PY - 2018/10/1
Y1 - 2018/10/1
N2 - The scalable preparation and functionalization of two-dimensional (2D) boron nitride (BN) are crucial for its practical applications. Herein, hydroxyl-functionalized BN (OBN) nanoplatelets have been successfully synthesized through a novel two-step method, involving a simple ball milling of bulk BN powders in the assistance of sodium hydroxide, which combine the synergetic effect of mechanical shear forces and chemical peeling, followed by annealing under air condition. The obtained OBN nanoplatelets result in high solubility and form stable dispersions in water or various organic solvents that can be utilized for multiple applications. Then, OBN nanoplatelet was used as platform for embedding supermolecular aggregate (DPCS) via ionic bonding and electrostatic interaction between dicyandiamide and multivalent anions phytic acid connected with cobalt ions (denoted as DPCS@OBN). It is noted that introducing well-characterized DPCS@OBN nanohybrids significantly improve the flame retardancy of epoxy acrylate (EA), i.e., 42.7% and 48.3% reductions in peak heat release rate and total heat release, respectively. In the case of EA/DPCS@OBN system, the storage modulus at 25 °C was dramatically improved by 80.7%, and glass transition temperature was shifted to higher value; the friction coefficient value of EA/[email protected] composite sharp decline to 0.077, which can be belong to the “superlubrication” phenomena. The excellent properties of these EA composites result from synergetic coupled effect between DPCS supermolecular and BN ultrathin nanoplatelets, as well as good interface interaction between DPCS@OBN and EA matrix.
AB - The scalable preparation and functionalization of two-dimensional (2D) boron nitride (BN) are crucial for its practical applications. Herein, hydroxyl-functionalized BN (OBN) nanoplatelets have been successfully synthesized through a novel two-step method, involving a simple ball milling of bulk BN powders in the assistance of sodium hydroxide, which combine the synergetic effect of mechanical shear forces and chemical peeling, followed by annealing under air condition. The obtained OBN nanoplatelets result in high solubility and form stable dispersions in water or various organic solvents that can be utilized for multiple applications. Then, OBN nanoplatelet was used as platform for embedding supermolecular aggregate (DPCS) via ionic bonding and electrostatic interaction between dicyandiamide and multivalent anions phytic acid connected with cobalt ions (denoted as DPCS@OBN). It is noted that introducing well-characterized DPCS@OBN nanohybrids significantly improve the flame retardancy of epoxy acrylate (EA), i.e., 42.7% and 48.3% reductions in peak heat release rate and total heat release, respectively. In the case of EA/DPCS@OBN system, the storage modulus at 25 °C was dramatically improved by 80.7%, and glass transition temperature was shifted to higher value; the friction coefficient value of EA/[email protected] composite sharp decline to 0.077, which can be belong to the “superlubrication” phenomena. The excellent properties of these EA composites result from synergetic coupled effect between DPCS supermolecular and BN ultrathin nanoplatelets, as well as good interface interaction between DPCS@OBN and EA matrix.
KW - Boron nitride
KW - Composites
KW - Flame retardant
KW - Friction coefficient
KW - Supermolecular
UR - http://www.scopus.com/inward/record.url?scp=85047086283&partnerID=8YFLogxK
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-85047086283&origin=recordpage
U2 - 10.1016/j.cej.2018.05.053
DO - 10.1016/j.cej.2018.05.053
M3 - RGC 21 - Publication in refereed journal
SN - 1385-8947
VL - 349
SP - 223
EP - 234
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
ER -