Page 60 - Read Online
P. 60

Page 24 of 29        Teng et al. Microstructures 2023;3:2023019  https://dx.doi.org/10.20517/microstructures.2023.07

               Revised the manuscript: Teng Y, Li J, Yao J, Kang L, Li Q
               Conceived and supervised the project: Kang L, Li Q

               Availability of data and materials
               Not applicable.

               Financial support and sponsorship
               The authors are grateful for the technical support for Nano-X from Suzhou Institute of Nano-Tech and
               Nano-Bionics, Chinese Academy of Sciences (SINANO). This work was supported by the Jiangsu Province
               Youth Fund (BK20220289), the China Postdoctoral Science Foundation (Grant No.2022M720104), and
               Jiangsu Funding Program for Excellent Postdoctoral Talent.

               Conflicts of interest
               All authors declared that there are no conflicts of interest.


               Ethical approval and consent to participate
               Not applicable.


               Consent for publication
               Not applicable.


               Copyright
               © The Author(s) 2023.


               REFERENCES
               1.       Iijima S. Helical microtubules of graphitic carbon. Nature 1991;354:56-8.  DOI
               2.       Peng L, Zhang Z, Qiu C. Carbon nanotube digital electronics. Nat Electron 2019;2:499-505.  DOI
               3.       Saito R, Nugraha ART, Hasdeo EH, Hung NT, Izumida W. Electronic and optical properties of single wall carbon nanotubes. Top
                    Curr Chem 2017;375:7.  DOI  PubMed
               4.       Yi C, Chen X, Gou F, et al. Direct measurements of the mechanical strength of carbon nanotube - aluminum interfaces. Carbon
                    2017;125:93-102.  DOI
               5.       Zhou K, Xu N, Xie G. Thermal conductivity of carbon nanotube superlattices: comparative study with defective carbon nanotubes.
                    Chin Phys B 2018;27:026501.  DOI
               6.       Wan H, Cao Y, Lo LW, Zhao J, Sepúlveda N, Wang C. Flexible carbon nanotube synaptic transistor for neurological electronic skin
                    applications. ACS Nano 2020;14:10402-12.  DOI  PubMed
               7.       Zang M. Band theory of single-walled carbon nanotubes. IEEE Trans Nanotechnol 2005;4:452-9.  DOI
               8.       Desai SB, Madhvapathy SR, Sachid AB, et al. MoS  transistors with 1-nanometer gate lengths. Science 2016;354:99-102.  DOI
                                                       2
                    PubMed
               9.       Srimani T, Ding J, Yu A, et al. Comprehensive study on high purity semiconducting carbon nanotube extraction. Adv Electron Mater
                    2022;8:2101377.  DOI
               10.       Dekker C. How we made the carbon nanotube transistor. Nat Electron 2018;1:518-518.  DOI
               11.       Clément P, Xu X, Stoppiello CT, et al. Direct synthesis of multiplexed metal-nanowire-based devices by using carbon nanotubes as
                    vector templates. Angew Chem Int Ed 2019;58:9928-32.  DOI  PubMed
               12.       Zhao C, Zhou X, Xie S, et al. DFT study of electronic structure and properties of N, Si and Pd-doped carbon nanotubes. Ceram Int
                    2018;44:21027-33.  DOI
               13.       Ajayan PM, lijima S. Capillarity-induced filling of carbon nanotubes. Nature 1993;361:333-4.  DOI
               14.       Giménez-López Mdel C, Moro F, La Torre A, et al. Encapsulation of single-molecule magnets in carbon nanotubes. Nat Commun
                    2011;2:407.  DOI  PubMed
               15.       Haft M, Grönke M, Gellesch M, et al. Tailored nanoparticles and wires of Sn, Ge and Pb inside carbon nanotubes. Carbon
                    2016;101:352-60.  DOI
               16.       Talyzin AV, Anoshkin IV, Krasheninnikov AV, et al. Synthesis of graphene nanoribbons encapsulated in single-walled carbon
                    nanotubes. Nano Lett 2011;11:4352-6.  DOI  PubMed
               17.       Kharlamova MV, Kramberger C, Saito T, Pichler T. Diameter and metal-dependent growth properties of inner tubes inside
   55   56   57   58   59   60   61   62   63   64   65