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Dive into the research topics where Ping Tzeng is active.

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Featured researches published by Ping Tzeng.


ACS Applied Materials & Interfaces | 2014

Improving the Gas Barrier Property of Clay–Polymer Multilayer Thin Films Using Shorter Deposition Times

Fangming Xiang; Ping Tzeng; Justin S. Sawyer; Oren Regev; Jaime C. Grunlan

Relatively fast exposure times (5 s) to aqueous solutions were found to improve the gas barrier of clay-polymer thin films prepared using layer-by-layer (LbL) assembly. Contrary to the common belief about deposition time (i.e., the longer the better), oxygen transmission rates (OTRs) of these nano-brick-wall assemblies are improved by reducing exposure time (from 1 min to 5 s). Regardless of composition, LbL films fabricated using shorter deposition time are always thicker in the first few layers, which correspond to greater clay spacing and lower OTR. A quadlayer (QL) assembly consisting of three repeat units of branched polyethylenimine (PEI), poly(acrylic acid) (PAA), PEI and montmorillonite (MMT) clay is only 24 nm thick when deposited with 1 min exposure to each ingredient. Reducing the exposure time of polyelectrolytes to 5 s not only increases this film thickness to 55 nm but also reduces the oxygen transmission rate (OTR) to 0.05 cm3/(m2 day atm), which is 2 orders of magnitude lower than the same film made using 1 min exposures. A conceptual model is proposed to explain the differences in growth and barrier, which are linked to polyelectrolyte relaxation, desorption, and interdiffusion. The universality of these findings is further exemplified by depositing clays with varying aspect ratios. This ability to quickly deposit high-barrier nanocomposite thin films opens up a tremendous opportunity in terms of commercial-scale processing of LbL assemblies.


Advanced Materials | 2014

Highly Size‐Selective Ionically Crosslinked Multilayer Polymer Films for Light Gas Separation

Daejin Kim; Ping Tzeng; Kevin J. Barnett; You-Hao Yang; Benjamin A. Wilhite; Jaime C. Grunlan

Exceptionally high hydrogen permselectivity, exceeding that of any polymeric or porous inorganic systems, is achieved using an ionically crosslinked multilayer polymer thin film.


Langmuir | 2015

Polymer–Graphene Oxide Quadlayer Thin-Film Assemblies with Improved Gas Barrier

Ping Tzeng; Bart Stevens; Ian Devlaming; Jaime C. Grunlan

Layer-by-layer assembly was used to create quadlayers (QLs) of chitosan (CH), poly(acrylic acid) (PAA), CH, and graphene oxide (GO). Electron microscopy confirmed GO coverage over the film and a highly ordered nanobrick wall structure. By varying pH deviation between CH and PAA, a thick and interdiffused polymer matrix was created because of the altered chain conformation. A 5 CH (pH 5.5)/PAA (pH 3)/CH (pH 5.5)/GO QL assembly (48 nm) exhibits very low oxygen permeability (3.9 × 10(-20) cm(3) cm cm(-2) Pa(-1) s(-1)) that matches SiOx barrier coatings. In an effort to maintain barrier performance under high humidity, GO was thermally reduced to increase hydrophobicity of the film. This reduction step increased H2/CO2 selectivity of a 5 QL film from 5 to 215, exceeding Robesons upper bound limit. This unique water-based multilayer nanocoating is very promising for a variety of gas purification and packaging applications.


ACS Applied Materials & Interfaces | 2016

Nanomechanical Behavior of High Gas Barrier Multilayer Thin Films.

Mohammad Humood; Shahla Chowdhury; Yixuan Song; Ping Tzeng; Jaime C. Grunlan; Andreas A. Polycarpou

Nanoindentation and nanoscratch experiments were performed on thin multilayer films manufactured using the layer-by-layer (LbL) assembly technique. These films are known to exhibit high gas barrier, but little is known about their durability, which is an important feature for various packaging applications (e.g., food and electronics). Films were prepared from bilayer and quadlayer sequences, with varying thickness and composition. In an effort to evaluate multilayer thin film surface and mechanical properties, and their resistance to failure and wear, a comprehensive range of experiments were conducted: low and high load indentation, low and high load scratch. Some of the thin films were found to have exceptional mechanical behavior and exhibit excellent scratch resistance. Specifically, nanobrick wall structures, comprising montmorillonite (MMT) clay and polyethylenimine (PEI) bilayers, are the most durable coatings. PEI/MMT films exhibit high hardness, large elastic modulus, high elastic recovery, low friction, low scratch depth, and a smooth surface. When combined with the low oxygen permeability and high optical transmission of these thin films, these excellent mechanical properties make them good candidates for hard coating surface-sensitive substrates, where polymers are required to sustain long-term surface aesthetics and quality.


Macromolecular Rapid Communications | 2016

Super Oxygen and Improved Water Vapor Barrier of Polypropylene Film with Polyelectrolyte Multilayer Nanocoatings

Yixuan Song; Ping Tzeng; Jaime C. Grunlan

Biaxially oriented polypropylene (BOPP) is widely used in packaging. Although its orientation increases mechanical strength and clarity, BOPP suffers from a high oxygen transmission rate (OTR). Multilayer thin films are deposited from water using layer-by-layer (LbL) assembly. Polyethylenimine (PEI) is combined with either poly(acrylic acid) (PAA) or vermiculite (VMT) clay to impart high oxygen barrier. A 30-bilayer PEI/VMT nanocoating (226 nm thick) improves the OTR of 17.8 μm thick BOPP by more than 30X, rivaling most inorganic coatings. PEI/PAA multilayers achieve comparable barrier with only 12 bilayers due to greater thickness, but these films exhibit increased oxygen permeability at high humidity. The PEI/VMT coatings actually exhibit improved oxygen barrier at high humidity (and also improve moisture barrier by more than 40%). This high barrier BOPP meets the criteria for sensitive food and some electronics packaging applications. Additionally, this water-based coating technology is cost effective and provides an opportunity to produce high barrier polypropylene film on an industrial scale.


Advanced Energy Materials | 2016

Outstanding Low Temperature Thermoelectric Power Factor from Completely Organic Thin Films Enabled by Multidimensional Conjugated Nanomaterials

Chungyeon Cho; Kevin L. Wallace; Ping Tzeng; Jui-Hung Hsu; Choongho Yu; Jaime C. Grunlan


Journal of Membrane Science | 2014

Influence of polymer interdiffusion and clay concentration on gas barrier of polyelectrolyte/clay nanobrick wall quadlayer assemblies

Ping Tzeng; Cale R. Maupin; Jaime C. Grunlan


Macromolecular Rapid Communications | 2015

Super hydrogen and helium barrier with polyelectolyte nanobrick wall thin film.

Ping Tzeng; Elva L. Lugo; Garret D. Mai; Benjamin A. Wilhite; Jaime C. Grunlan


Advanced Functional Materials | 2016

Stiff and Transparent Multilayer Thin Films Prepared Through Hydrogen-Bonding Layer-by-Layer Assembly of Graphene and Polymer

Fangming Xiang; Dorsa Parviz; Tara M. Givens; Ping Tzeng; Eric M. Davis; Christopher M. Stafford; Micah J. Green; Jaime C. Grunlan


Journal of Materials Chemistry C | 2015

Bio-inspired iridescent layer-by-layer assembled cellulose nanocrystal Bragg stacks

Ping Tzeng; D.J. Hewson; Peter Vukusic; Stephen J. Eichhorn; Jaime C. Grunlan

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Christopher M. Stafford

National Institute of Standards and Technology

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Eric M. Davis

National Institute of Standards and Technology

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