Literature DB >> 24289435

Robofurnace: a semi-automated laboratory chemical vapor deposition system for high-throughput nanomaterial synthesis and process discovery.

C Ryan Oliver1, William Westrick, Jeremy Koehler, Anna Brieland-Shoultz, Ilias Anagnostopoulos-Politis, Tizoc Cruz-Gonzalez, A John Hart.   

Abstract

Laboratory research and development on new materials, such as nanostructured thin films, often utilizes manual equipment such as tube furnaces due to its relatively low cost and ease of setup. However, these systems can be prone to inconsistent outcomes due to variations in standard operating procedures and limitations in performance such as heating and cooling rates restrict the parameter space that can be explored. Perhaps more importantly, maximization of research throughput and the successful and efficient translation of materials processing knowledge to production-scale systems, relies on the attainment of consistent outcomes. In response to this need, we present a semi-automated lab-scale chemical vapor deposition (CVD) furnace system, called "Robofurnace." Robofurnace is an automated CVD system built around a standard tube furnace, which automates sample insertion and removal and uses motion of the furnace to achieve rapid heating and cooling. The system has a 10-sample magazine and motorized transfer arm, which isolates the samples from the lab atmosphere and enables highly repeatable placement of the sample within the tube. The system is designed to enable continuous operation of the CVD reactor, with asynchronous loading∕unloading of samples. To demonstrate its performance, Robofurnace is used to develop a rapid CVD recipe for carbon nanotube (CNT) forest growth, achieving a 10-fold improvement in CNT forest mass density compared to a benchmark recipe using a manual tube furnace. In the long run, multiple systems like Robofurnace may be linked to share data among laboratories by methods such as Twitter. Our hope is Robofurnace and like automation will enable machine learning to optimize and discover relationships in complex material synthesis processes.

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Year:  2013        PMID: 24289435      PMCID: PMC3838427          DOI: 10.1063/1.4826275

Source DB:  PubMed          Journal:  Rev Sci Instrum        ISSN: 0034-6748            Impact factor:   1.523


  15 in total

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2.  Kinetics of water-assisted single-walled carbon nanotube synthesis revealed by a time-evolution analysis.

Authors:  Don N Futaba; Kenji Hata; Takeo Yamada; Kohei Mizuno; Motoo Yumura; Sumio Iijima
Journal:  Phys Rev Lett       Date:  2005-07-29       Impact factor: 9.161

3.  Electrical connectivity in single-walled carbon nanotube networks.

Authors:  Peter N Nirmalraj; Philip E Lyons; Sukanta De; Jonathan N Coleman; John J Boland
Journal:  Nano Lett       Date:  2009-11       Impact factor: 11.189

4.  Thermal conduction in aligned carbon nanotube-polymer nanocomposites with high packing density.

Authors:  Amy M Marconnet; Namiko Yamamoto; Matthew A Panzer; Brian L Wardle; Kenneth E Goodson
Journal:  ACS Nano       Date:  2011-06-03       Impact factor: 15.881

5.  A roadmap for graphene.

Authors:  K S Novoselov; V I Fal'ko; L Colombo; P R Gellert; M G Schwab; K Kim
Journal:  Nature       Date:  2012-10-11       Impact factor: 49.962

6.  Statistical analysis of variation in laboratory growth of carbon nanotube forests and recommendations for improved consistency.

Authors:  C Ryan Oliver; Erik S Polsen; Eric R Meshot; Sameh Tawfick; Sei Jin Park; Mostafa Bedewy; A John Hart
Journal:  ACS Nano       Date:  2013-03-15       Impact factor: 15.881

7.  The high-throughput highway to computational materials design.

Authors:  Stefano Curtarolo; Gus L W Hart; Marco Buongiorno Nardelli; Natalio Mingo; Stefano Sanvito; Ohad Levy
Journal:  Nat Mater       Date:  2013-03       Impact factor: 43.841

8.  Multiple alkynes react with ethylene to enhance carbon nanotube synthesis, suggesting a polymerization-like formation mechanism.

Authors:  Desirée L Plata; Eric R Meshot; Christopher M Reddy; A John Hart; Philip M Gschwend
Journal:  ACS Nano       Date:  2010-11-04       Impact factor: 15.881

9.  Growth of ultrahigh density single-walled carbon nanotube forests by improved catalyst design.

Authors:  Guofang Zhong; Jamie H Warner; Martin Fouquet; Alex W Robertson; Bingan Chen; John Robertson
Journal:  ACS Nano       Date:  2012-03-28       Impact factor: 15.881

10.  Mechanism and kinetics of growth termination in controlled chemical vapor deposition growth of multiwall carbon nanotube arrays.

Authors:  Michael Stadermann; Sarah P Sherlock; Jung-Bin In; Francesco Fornasiero; Hyung Gyu Park; Alexander B Artyukhin; Yinmin Wang; James J De Yoreo; Costas P Grigoropoulos; Olgica Bakajin; Alexander A Chernov; Aleksandr Noy
Journal:  Nano Lett       Date:  2009-02       Impact factor: 11.189

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