Boron nitride nanotube

Boron nitride nanotubes (BNNTs) are a polymorph of boron nitride. They were predicted in 1994[2] and experimentally discovered in 1995.[3] Structurally they are similar to carbon nanotubes, which are cylinders with sub-micrometer diameters and micrometer lengths, except that carbon atoms are alternately substituted by nitrogen and boron atoms. However, the properties of BN nanotubes are very different: whereas carbon nanotubes can be metallic or semiconducting depending on the rolling direction and radius, a BN nanotube is an electrical insulator with a bandgap of ~5.5 eV, basically independent of tube chirality and morphology.[4] In addition, a layered BN structure is much more thermally and chemically stable than a graphitic carbon structure.[5][6] BNNTs have unique physical and chemical properties, when compared to Carbon Nanotubes (CNTs) providing a very wide range of commercial and scientific applications.[7] Although BNNTs and CNTs share similar tensile strength properties of circa 100 times stronger than steel and 50 times stronger than industrial-grade carbon fibre,[8] BNNTs can withstand high temperatures of up to 900 °C.[9] as opposed to CNTs which remain stable up to temperatures of 400 °C,[10] and are also capable of absorbing radiation.[11] BNNTS are packed with physicochemical features including high hydrophobicity and considerable hydrogen storage capacity and they are being investigated for possible medical and biomedical applications, including gene delivery, drug delivery, neutron capture therapy, and more generally as biomaterials [12] BNNTs are also superior to CNTs in the way they bond to polymers giving rise to many new applications and composite materials.[11]

BN nanotube was bent inside a transmission electron microscope. Its walls self-healed after release of pressure.[1]

Synthesis and production edit

 
(a) Schematic of an RF induction thermal plasma system used for mass production of BNNTs. Pure h-BN powder is continuously transformed into BNNTs by passing through a high-temperature N2-H2 plasma (~8000 K). (b) Calculated temperature distribution inside the reactor. (c) Calculated velocity distribution (left) and streamlines (right).[13]
 
Meters-long BN buckypaper sheets can be fabricated by adding a cylindrical drum to the above reactor.[13]

All well-established techniques of carbon nanotube growth, such as arc-discharge,[3][14] laser ablation[15][16] and chemical vapor deposition,[17] are used for mass-production of BN nanotubes at a tens of grams scale.[13] BN nanotubes can also be produced by ball milling of amorphous boron, mixed with a catalyst (iron powder), under NH3 atmosphere. Subsequent annealing at ~1100 °C in nitrogen flow transforms most of the product into BN.[18][19] A high-temperature high-pressure method is also suitable for BN nanotube synthesis.[20]

BNNT production route has been a significant issue due to low yield and poor quality in comparison with CNT, thus limiting its practical uses. However, many great successes in BNNT synthesis have been achieved in recent[when?] years, enabling access to this material and paving the way for the development of promising applications [8] Recently[when?] significant advancement have been made by Deakin University Australia with a ‘novel and scalable’ manufacturing process will allow the production of BNNTs in large quantities for the first time since the material was first discovered two decades ago.[21] Australian listed ASX entity PPK Group (ASX:PPK) signed a joint venture agreement with Deakin in November 2018 to form BNNT Technology Limited, with the goal of manufacturing boron nitride nanotubes (BNNT) on a commercial basis.[22] This collaboration is supported with investment by the Australian Government into BNNT Technology Limited [23] and may significantly increase the world supply of BNNT unlocking a new array of applications, materials, composites and technologies.

As of March 2022 PPK is reporting BNNT production is expected to increase 150% from currently 4 kg per week, to 10 kg per week when installation of two new six-furnace modules are installed. https://www.ppkgroup.com.au/site/PDF/92f2a2a3-5f72-430e-bec6-9bb89993e4c8/ExpansionofBNNTTLsproductionfacilities

Properties and potential applications edit

 
BN nanotube buckypaper is flame resistant, as shown in this comparative flame test of airplanes made of cellullose, carbon buckypaper and BN nanotube buckypaper.[13]

Electrical and field emission properties of BN nanotubes can be tuned by doping with gold atoms via sputtering of gold on the nanotubes.[18][24] Doping rare-earth atoms of europium turns a BN nanotube into a phosphor material emitting visible light under electron excitation.[19] Quantum dots formed from 3 nm gold particles spaced across the nanotubes exhibit the properties of field-effect transistors at room temperature.[25]

Like BN fibers, boron nitride nanotubes show promise for aerospace applications where integration of boron and in particular the light isotope of boron (10B) into structural materials improves both their strength and their radiation-shielding properties; the improvement is due to strong neutron absorption by 10B. Such 10BN materials are of particular theoretical value as composite structural materials in future crewed interplanetary spacecraft, where absorption-shielding from cosmic ray spallation neutrons is expected to be a particular asset in light construction materials.[26]

Toxicological[27] investigations on BNNTs in vivo and in vitro showed low toxicity[28] and in general, an enhanced chemical inertia, favoring its biocompatibility. Although not overtly toxic, the source of toxicity appears to be from the shape and the amount of BNNT/Impurities present. This was confirmed by a study that showed with increasing purity of BNNT a minor increase in toxicity.[29] Their use in the biomedical field was suggested both as nanocarriers and as nanotransducers.[30] BN nanotubes have also shown potential in certain cancer treatments.[31][clarification needed]

High stiffness and excellent chemical stability makes BNNTs ideal material for reinforcement in polymers, ceramics and metals. For instance, buckypaper-based BNNT/epoxy composites and polyurethane-modified buckypaper composites have been successfully developed.1,16 These composite materials exhibit Young’s moduli over twice the value for neat epoxy and 20 times the value for unimpregnated buckypaper. BNNTs are also one of the most promising classes of material for reinforcing aluminum-based structures.17 The low reactivity of BNNTs facilitates the integration of this material into an aluminum matrix where CNTs fail due to the reaction between the carbon and the aluminum which forms the undesired Al4C3 phase at the interface. BNNTs also exhibit much higher oxidation temperature (~950 °C) than the melting point of aluminum (660 °C), which enables the homogenous dispersion of BNNTs directly into the aluminum melt. Since BNNTs retain their mechanical properties at high temperatures while having a very low density, the development of new temperature-resistant lightweight MMC is achievable. BNNTs also exhibit good thermal conductivity. This renders them useful for applications in nanoelectronics where heat dissipation is critical. This also makes BNNTs multifunctional as it not only improves the stiffness of composites but also yields high thermal conductivity along with high transparency. The combination of high stiffness and high transparency is already exploited in the development of BNNT-reinforced glass composites.18 Other intrinsic properties of BNNTs such as good radiation shielding ability,19 high electrical resistance and excellent piezoelectric properties are likely to promote interest for integrating them in new applications.[32]

References edit

  1. ^ Golberg, Dmitri; Costa, Pedro M. F. J.; Mitome, Masanori; Bando, Yoshio (2009). "Properties and engineering of individual inorganic nanotubes in a transmission electron microscope". Journal of Materials Chemistry. 19 (7): 909. doi:10.1039/B814607A.
  2. ^ Rubio, A.; et al. (1994). "Theory of Graphitic Boron Nitride Nanotubes". Physical Review B. 49 (7): 5081–5084. Bibcode:1994PhRvB..49.5081R. doi:10.1103/PhysRevB.49.5081. PMID 10011453.
  3. ^ a b Chopra, N. G.; et al. (1995). "Boron Nitride Nanotubes". Science. 269 (5226): 966–7. Bibcode:1995Sci...269..966C. doi:10.1126/science.269.5226.966. PMID 17807732. S2CID 28988094.
  4. ^ Blase, X.; et al. (1994). "Stability and Band Gap Constancy of Boron Nitride Nanotubes". Europhysics Letters (EPL). 28 (5): 335. Bibcode:1994EL.....28..335B. doi:10.1209/0295-5075/28/5/007. S2CID 120010610.
  5. ^ Wei-Qiang Han; et al. (2002). "Transformation of BxCyNz Nanotubes to Pure BN Nanotubes" (PDF). Applied Physics Letters. 81 (6): 1110. Bibcode:2002ApPhL..81.1110H. doi:10.1063/1.1498494.
  6. ^ Golberg, D.; Bando, Y.; Tang, C.C. & Zhi, C.Y. (2007). "Boron Nitride Nanotubes". Advanced Materials. 19 (18): 2413. Bibcode:2007AdM....19.2413G. doi:10.1002/adma.200700179. S2CID 100255406.
  7. ^ Kim, Jun Hee; Pham, Thang Viet; Hwang, Jae Hun; Kim, Cheol Sang; Kim, Myung Jong (2018-06-28). "Boron nitride nanotubes: synthesis and applications". Nano Convergence. 5 (1): 17. Bibcode:2018NanoC...5...17K. doi:10.1186/s40580-018-0149-y. ISSN 2196-5404. PMC 6021457. PMID 30046512.
  8. ^ a b Kim, Jun Hee; Pham, Thang Viet; Hwang, Jae Hun; Kim, Cheol Sang; Kim, Myung Jong (2018-06-28). "Boron nitride nanotubes: synthesis and applications". Nano Convergence. 5 (1): 17. Bibcode:2018NanoC...5...17K. doi:10.1186/s40580-018-0149-y. ISSN 2196-5404. PMC 6021457. PMID 30046512.
  9. ^ "Step toward creating planes that travel at hypersonic speed: Air travel times could be drastically reduced by rare material". ScienceDaily. Retrieved 2020-03-20.
  10. ^ Mahajan, Amit; Kingon, Angus; Kukovecz, Ákos; Konya, Zoltan; Vilarinho, Paula M. (2013-01-01). "Studies on the thermal decomposition of multiwall carbon nanotubes under different atmospheres". Materials Letters. 90: 165–168. doi:10.1016/j.matlet.2012.08.120. ISSN 0167-577X.
  11. ^ a b Elsevier, Name |. "CNT's are old stuff. Make room for BNNT – it is stronger and can take the heat!". chemical-materials.elsevier.com. Retrieved 2020-03-20.
  12. ^ Şen, Özlem; Emanet, Melis; Çulha, Mustafa (2016-01-01), Ciofani, Gianni; Mattoli, Virgilio (eds.), "Chapter 3 - Biocompatibility evaluation of boron nitride nanotubes", Boron Nitride Nanotubes in Nanomedicine, Micro and Nano Technologies, William Andrew Publishing, pp. 41–58, ISBN 978-0-323-38945-7, retrieved 2020-03-20
  13. ^ a b c d Kim, Keun Su; Jakubinek, Michael B.; Martinez-Rubi, Yadienka; Ashrafi, Behnam; Guan, Jingwen; O'Neill, K.; Plunkett, Mark; Hrdina, Amy; Lin, Shuqiong; Dénommée, Stéphane; Kingston, Christopher; Simard, Benoit (2015). "Polymer nanocomposites from free-standing, macroscopic boron nitride nanotube assemblies". RSC Adv. 5 (51): 41186. Bibcode:2015RSCAd...541186K. doi:10.1039/C5RA02988K.
  14. ^ Cumings, J. (2000). "Mass-Production of Boron Nitride Double-Wall Nanotubes and Nanococoons". Chemical Physics Letters. 316 (3–4): 211. Bibcode:2000CPL...316..211C. doi:10.1016/S0009-2614(99)01277-4.
  15. ^ Golberg, D.; et al. (1996). "Nanotubes in Boron Nitride Laser Heated at High Pressure". Applied Physics Letters. 69 (14): 2045. Bibcode:1996ApPhL..69.2045G. doi:10.1063/1.116874.
  16. ^ Yu, D. P.; et al. (1998). "Synthesis of Boron Nitride Nanotubes by Means of Excimer Laser Ablation at High Temperature". Applied Physics Letters. 72 (16): 1966. Bibcode:1998ApPhL..72.1966Y. doi:10.1063/1.121236.
  17. ^ Zhi, C.; et al. (2005). "Effective Precursor for High Yield Synthesis of Pure BN Nanotubes". Solid State Communications. 135 (1–2): 67. Bibcode:2005SSCom.135...67Z. doi:10.1016/j.ssc.2005.03.062.
  18. ^ a b Chen, H.; et al. (2008). "Nano Au-Decorated Boron Nitride Nanotubes: Conductance Modification and Field-Emission Enhancement" (PDF). Applied Physics Letters. 92 (24): 243105. Bibcode:2008ApPhL..92x3105C. doi:10.1063/1.2943653. Archived from the original (PDF) on 2011-07-20.
  19. ^ a b Chen, H.; et al. (2007). "Eu-Doped Boron Nitride Nanotubes as a Nanometer-Sized Visible-Light Source" (PDF). Advanced Materials. 19 (14): 1845. Bibcode:2007AdM....19.1845C. doi:10.1002/adma.200700493. S2CID 94466192. Archived from the original (PDF) on 2011-07-20.
  20. ^ Smith, Michael W; Jordan, Kevin C; Park, Cheol; Kim, Jae-Woo; Lillehei, Peter T; Crooks, Roy; Harrison, Joycelyn S (16 December 2009). "Very long single- and few-walled boron nitride nanotubes via the pressurized vapor/condenser method". Nanotechnology. 20 (50): 505604. Bibcode:2009Nanot..20X5604S. doi:10.1088/0957-4484/20/50/505604. hdl:2060/20090042520. PMID 19907071. S2CID 25104963.
  21. ^ Jasmina (2017-03-05). "Deakin researchers achieve world-first BNNT breakthrough". Australian Manufacturing. Retrieved 2020-03-20.
  22. ^ Ogg, Matt. "Fast-riser PPK takes high-tech materials up a notch with Deakin University". Business News Australia. Retrieved 2020-03-22.
  23. ^ Smon, Bernadette (2018-09-07). "$19M boost for advanced manufacturers". www.minister.industry.gov.au. Retrieved 2020-03-23.
  24. ^ Chen, Y.; et al. (2008). "Au Doped BN Nanotubes with Tunable Conductivity". Nano. 2 (6): 367. doi:10.1142/S1793292007000702.
  25. ^ Lee, C. H.; Qin, S.; Savaikar, M. A.; Wang, J.; Hao, B.; Zhang, D.; Banyai, D.; Jaszczak, J. A.; Clark, K. W.; Idrobo, J. C.; Li, A. P.; Yap, Y. K. (2013). "Room-Temperature Tunneling Behavior of Boron Nitride Nanotubes Functionalized with Gold Quantum Dots". Advanced Materials. 25 (33): 4544–8. Bibcode:2013AdM....25.4544L. doi:10.1002/adma.201301339. PMID 23775671. S2CID 12049641.
  26. ^ Yu, J.; et al. (2006). "Isotopically Enriched 10BN Nanotubes" (PDF). Advanced Materials. 18 (16): 2157. Bibcode:2006AdM....18.2157Y. doi:10.1002/adma.200600231. S2CID 135710601. Archived from the original (PDF) on 2011-07-17.
  27. ^ Kodali, Vamsi; Roberts, Jenny R.; Glassford, Eric; Gill, Ryan; Friend, Sherri; Dunn, Kevin L.; Erdely, Aaron (2022-10-31). "Understanding toxicity associated with boron nitride nanotubes: Review of toxicity studies, exposure assessment at manufacturing facilities, and read-across". Journal of Materials Research. 37 (24): 4620–4638. Bibcode:2022JMatR..37.4620K. doi:10.1557/s43578-022-00796-8. ISSN 2044-5326. PMC 10174278. PMID 37193295. S2CID 253261443.
  28. ^ Kodali, Vamsi K.; Roberts, Jenny R.; Shoeb, Mohammad; Wolfarth, Michael G.; Bishop, Lindsey; Eye, Tracy; Barger, Mark; Roach, Katherine A.; Friend, Sherri; Schwegler-Berry, Diane; Chen, Bean T.; Stefaniak, Aleksandr; Jordan, Kevin C.; Whitney, Roy R.; Porter, Dale W. (2017-09-14). "Acute in vitro and in vivo toxicity of a commercial grade boron nitride nanotube mixture". Nanotoxicology. 11 (8): 1040–1058. doi:10.1080/17435390.2017.1390177. ISSN 1743-5390. PMID 29094619. S2CID 3767052.
  29. ^ Kodali, Vamsi; Kim, Keun Su; Roberts, Jenny R.; Bowers, Lauren; Wolfarth, Michael G.; Hubczak, John; Xin, Xing; Eye, Tracy; Friend, Sherri; Stefaniak, Aleksandr B.; Leonard, Stephen S.; Jakubinek, Michael; Erdely, Aaron (2022-11-14). "Influence of Impurities from Manufacturing Process on the Toxicity Profile of Boron Nitride Nanotubes". Small. 18 (52): 2203259. doi:10.1002/smll.202203259. ISSN 1613-6810. PMC 9975644. PMID 36373669. S2CID 253533121.
  30. ^ Ciofani, Gianni; Danti, Serena; Genchi, Giada Graziana; Mazzolai, Barbara; Mattoli, Virgilio (2013-05-27). "Boron Nitride Nanotubes: Biocompatibility and Potential Spill-Over in Nanomedicine". Small. 9 (9–10): 1672–85. doi:10.1002/smll.201201315. PMID 23423826.
  31. ^ Zhong, J; Dai, L.C. (2012). "Targeting Liposomal Nanomedicine to Cancer Therapy". Technology in Cancer Research & Treatment. 11 (5): 475–481. doi:10.7785/tcrt.2012.500259. PMID 22475065.
  32. ^ "Boron Nitride Nanotubes: Properties, Synthesis and Applications". Sigma-Aldrich. Retrieved 2020-03-20.