Direct growth of boronate based shikimic acid imprinted polymer on porous substrate surface: A stable membrane for specific molecular separation

2021 ◽  
pp. 152349
Author(s):  
Yao Zhu ◽  
Zhiyuan Pan ◽  
Jian Rong ◽  
Kaili Mao ◽  
Dongya Yang ◽  
...  
2002 ◽  
Vol 09 (05n06) ◽  
pp. 1611-1615 ◽  
Author(s):  
G. CAMPILLO ◽  
L. F. CASTRO ◽  
P. VIVAS ◽  
E. BACA ◽  
P. PRIETO ◽  
...  

La 0.67 Ca 0.33 MnO 3 - δ thin films were deposited using a high-pressure dc-sputtering process. Pure oxygen at a pressure of 3.8 mbar was used as sputtering gas. The films were grown on (001) LaAlO 3 and (001) SrTiO 3 substrates at heater temperature of 850° without any annealing treatment. The formation of highly a-axis-oriented films with sharp interface with substrate surface is demonstrated by X-ray diffraction, transmission electron microscope (TEM), and atomic force microscope (AFM) analysis. Electrical characterization revealed a metal–insulator transition at T MI = 276 K, and magnetic characterization showed good magnetic properties with a PM–FM transition at TC ≈ 262 K.


MRS Advances ◽  
2016 ◽  
Vol 1 (32) ◽  
pp. 2273-2283
Author(s):  
Qing Paduano ◽  
Michael Snure

ABSTRACTWe studied MOCVD processing for direct growth of BN on 2” sapphire substrates as a template for heterostructures with two dimensional (2D) and three dimensional (3D) materials. The combined experimental evidence points to three growth modes for BN: self-terminating, 3D random, and layer-by-layer, all of which are dependent on V/III ratio, temperature, pressure, and substrate surface modification via nitridation. At moderate temperature (950-1050°C), BN growth using high V/III ratio is self-terminating, resulting in c-oriented films aligned in-plane with respect to the orientation of the sapphire substrate. BN films grown under low V/III ratios are 3D, randomly oriented, and nano-crystalline. At higher temperature (1100°C), self-terminating growth transitions to a continuous layer-by-layer growth mode. When BN growth is self-terminating, films exhibit atomically smooth surface morphology and highly uniform thickness over a 2” sapphire wafer. Using these BN/sapphire templates we studied the growth of 2D and 2D/3D heterostructures. To study direct growth of 2D on 2D layered material we deposited graphene on BN in a continued process within the same MOCVD system. Furthermore, we explore the growth and nucleation of 3D materials (GaN and AlN) on BN. AlGaN/GaN based high electron mobility transistor (HEMT) structures grown on BN/sapphire exhibited two-dimensional electron gas characteristics at the AlGaN/GaN heterointerface, with room-temperature electron mobility and sheet electron density about 1900cm2/Vs and 1x1013cm-2, respectively.


2012 ◽  
Vol 51 (1S) ◽  
pp. 01AH04
Author(s):  
Takayasu Iokawa ◽  
Tomoyuki Tsutsui ◽  
Shigeya Naritsuka ◽  
Takahiro Maruyama

Nanoscale ◽  
2020 ◽  
Vol 12 (45) ◽  
pp. 23282-23282
Author(s):  
Yanzhe Qin ◽  
Stephan Koehler ◽  
Yongyou Hu ◽  
Yuqing Wu ◽  
Xinwen Peng ◽  
...  

Correction for ‘Direct growth of a porous substrate on high-quality graphene via in situ phase inversion of a polymeric solution’ by Yanzhe Qin et al., Nanoscale, 2020, 12, 4953–4958, DOI: 10.1039/C9NR09693K.


2011 ◽  
Vol 691 ◽  
pp. 546-567 ◽  
Author(s):  
H. Ding ◽  
T. G. Theofanous

AbstractAxisymmetric droplet impact on a hydrophilic substrate with one pore of relatively large radius is numerically studied using diffuse-interface methods. The flows above the substrate and in the capillary are fully resolved by a Navier–Stokes solver that accounts for contact-angle hysteresis. Upon impact, the infiltration of the drop into the capillary is seen to follow one or more of the three regimes identified in recent experiments (Delbos, Lorenceau & Pitois, J. Colloid Interface Sci., vol. 341, 2010, p. 171): complete penetration, partial penetration as a slug, and re-entry with bubble entrapment. The agreement on experimentally measured quantities, such as transition criteria and slug lengths, is quantitative. On this basis we reveal previously unidentified flow phenomena, investigate flow details that are not accessible experimentally, expand the parameter space considered previously, identify the key asymptotic regimes in the penetration transient, generalize the results in terms of relevant dimensionless groups, and provide a further step (using a multi-capillary arrangement as an idealization of a porous substrate) towards the ultimate purpose of such work, which is the understanding of inertial effects with porous substrates, including eccentric impacts. The significant effect of impact inertia is revealed as a spatial anchoring of a stagnation region, formed and persisting for most of the transient. As a consequence, fluid within an upright cylinder is destined to enter the capillary, and this is in agreement with the hypothesis of Delbos et al. in interpreting the amounts of liquid found inside the capillary, except that the radius of the cylinder is 30 % greater than the capillary radius. The remainder of the liquid spreads laterally on the substrate surface, and the slug regime is a consequence of this partition. Numerical experiments also indicate that after reaching the maximum-spread area, the lamella on the substrate tends to refill the capillary and entrap a bubble, unless contact-angle hysteresis hinders the radially inward motion of the lamella.


RSC Advances ◽  
2020 ◽  
Vol 10 (16) ◽  
pp. 9500-9511 ◽  
Author(s):  
Zulfida Mohamad Hafis Mohd Shafie ◽  
Abdul Latif Ahmad ◽  
Siew Chun Low ◽  
Sabine Rode ◽  
Bouchra Belaissaoui

LiCl was incorporated in PES porous substrate fabrication methodology to influence the substrate's surface architectures and later, the resulting PDMS dense separating layer formation for composite membrane gas separation.


Soft Matter ◽  
2012 ◽  
Vol 8 (27) ◽  
pp. 7169 ◽  
Author(s):  
Xiantao Shen ◽  
Changgang Xu ◽  
Lei Ye

Nanoscale ◽  
2020 ◽  
Vol 12 (8) ◽  
pp. 4953-4958
Author(s):  
Yanzhe Qin ◽  
Stephan Koehler ◽  
Yongyou Hu ◽  
Yuqing Wu ◽  
Xinwen Peng ◽  
...  

Direct growth of a polymeric porous substrate on high-quality graphene.


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