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Teng et al. Microstructures 2023;3:2023019  https://dx.doi.org/10.20517/microstructures.2023.07  Page 27 of 29

               78.       Fu C, Oviedo MB, Zhu Y, et al. Confined lithium-sulfur reactions in narrow-diameter carbon nanotubes reveal enhanced
                    electrochemical reactivity. ACS Nano 2018;12:9775-84.  DOI  PubMed
               79.       Corio P, Santos A, Santos P, et al. Characterization of single wall carbon nanotubes filled with silver and with chromium compounds.
                    Chem Phys Lett 2004;383:475-80.  DOI
               80.       Zhang J, Guo S, Wei J, et al. High-efficiency encapsulation of Pt nanoparticles into the channel of carbon nanotubes as an enhanced
                    electrocatalyst for methanol oxidation. Chemistry 2013;19:16087-92.  DOI  PubMed
               81.       Kozhuharova R, Ritschel M, Elefant D, et al. Synthesis and characterization of aligned Fe-filled carbon nanotubes on silicon
                    substrates. J Mater Sci Mater Electron 2003;14:789-91.  DOI
               82.       Yao Y, Chen H, Lian C, et al. Fe, Co, Ni nanocrystals encapsulated in nitrogen-doped carbon nanotubes as Fenton-like catalysts for
                    organic pollutant removal. J Hazard Mater 2016;314:129-39.  DOI  PubMed
               83.       Gao X, Zhang Y, Chen X, et al. Carbon nanotubes filled with metallic nanowires. Carbon 2004;42:47-52.  DOI
               84.       Shi L, Rohringer P, Suenaga K, et al. Confined linear carbon chains as a route to bulk carbyne. Nat Mater 2016;15:634-9.  DOI
                    PubMed
               85.       Lenz K, Narkowicz R, Wagner K, et al. Magnetization dynamics of an individual single-crystalline Fe-filled carbon nanotube. Small
                    2019;15:e1904315.  DOI  PubMed
               86.       Aryee D, Seifu D. Shape anisotropy and hybridization enhanced magnetization in nanowires of Fe/MgO/Fe encapsulated in carbon
                    nanotubes. J Magn Magn Mater 2017;429:161-5.  DOI
               87.       Xu S, Li P, Lu Y. In situ atomic-scale analysis of Rayleigh instability in ultrathin gold nanowires. Nano Res 2018;11:625-32.  DOI
               88.       Bingham JT, Proudian AP, Vyas S, Zimmerman JD. Understanding fragmentation of organic small molecules in atom probe
                    tomography. J Phys Chem Lett 2021;12:10437-43.  DOI  PubMed
               89.       Jordan JW, Lowe GA, McSweeney RL, et al. Host-guest hybrid redox materials self-assembled from polyoxometalates and single-
                    walled carbon nanotubes. Adv Mater 2019;31:e1904182.  DOI  PubMed
               90.       Smith BW, Monthioux M, Luzzi DE. Encapsulated C60 in carbon nanotubes. Nature 1998;396:323-4.  DOI
               91.       Botos Á, Khlobystov AN, Botka B, et al. Investigation of fullerene encapsulation in carbon nanotubes using a complex approach
                    based on vibrational spectroscopy. Phys Status Solidi B 2010;247:2743-5.  DOI
               92.       Ashino M, Obergfell D, Haluska M, et al. Atomically resolved mechanical response of individual metallofullerene molecules
                    confined inside carbon nanotubes. Nat Nanotechnol 2008;3:337-41.  DOI  PubMed
               93.       Khlobystov AN, Porfyrakis K, Kanai M, et al. Molecular motion of endohedral fullerenes in single-walled carbon nanotubes. Angew
                    Chem Int Ed 2004;43:1386-9.  DOI  PubMed
               94.       Morgan DA, Sloan J, Green ML. Direct imaging of o-carborane molecules within single walled carbon nanotubes. Chem Commun
                    2002;20:2442-3.  DOI  PubMed
               95.       Khlobystov AN, Britz DA, Briggs GA. Molecules in carbon nanotubes. ACC Chem Res 2005;38:901-9.  DOI  PubMed
               96.       Villalva J, Develioglu A, Montenegro-Pohlhammer N, et al. Spin-state-dependent electrical conductivity in single-walled carbon
                    nanotubes encapsulating spin-crossover molecules. Nat Commun 2021;12:1578.  DOI  PubMed  PMC
               97.       Lee CH, Kang KT, Park KS, et al. The nano-memory devices of a single wall and peapod structural carbon nanotube field effect
                    transistor. Jpn J Appl Phys 2003;42:5392-4.  DOI
               98.       Friedrichs S, Sloan J, Green MLH, Meyer RR, Kirkland AI, Hutchison JL. Complete characterisation of a Sb O /(21,-8)SWNT
                                                                                              2  3
                    inclusion composite. Chem Commun 2001;10:929-30.  DOI
               99.       Brown G, Bailey SR, Sloan J, et al. Electron beam induced in situ clusterisation of 1D ZrCl  chains within single-walled carbon
                                                                                  4
                    nanotubes. Chem Commun 2001;9:845-6.  DOI
               100.      Eliseev AA, Chernysheva MV, Verbitskii NI, et al. Chemical reactions within single-walled carbon nanotube channels. Chem Mater
                    2009;21:5001-3.  DOI
               101.      Nagata M, Shukla S, Nakanishi Y, et al. Isolation of single-wired transition-metal monochalcogenides by carbon nanotubes. Nano
                    Lett 2019;19:4845-51.  DOI  PubMed
               102.      Eliseev A, Yashina L, Brzhezinskaya M, et al. Structure and electronic properties of AgX (X = Cl, Br, I)-intercalated single-walled
                    carbon nanotubes. Carbon 2010;48:2708-21.  DOI
               103.      Eliseev A, Yashina L, Verbitskiy N, et al. Interaction between single walled carbon nanotube and 1D crystal in CuX@SWCNT (X =
                    Cl, Br, I) nanostructures. Carbon 2012;50:4021-39.  DOI
               104.      Kharlamova MV, Yashina LV, Volykhov AA, et al. Acceptor doping of single-walled carbon nanotubes by encapsulation of zinc
                    halogenides. Eur Phys J B 2012;85:34.  DOI
               105.      Li  L,  Lin  T,  Doig  J,  et  al.  Crystal-encapsulation-induced  band-structure  change  in  single-walled  carbon  nanotubes:
                    photoluminescence and Raman spectra. Phys Rev B 2006;74:245418.  DOI
               106.      Stoppiello CT, Biskupek J, Li ZY, et al. A one-pot-one-reactant synthesis of platinum compounds at the nanoscale. Nanoscale
                    2017;9:14385-94.  DOI  PubMed
               107.      Cain JD, Oh S, Azizi A, et al. Ultranarrow TaS  nanoribbons. Nano Lett 2021;21:3211-7.  DOI  PubMed
                                                  2
               108.      Meyer S, Pham T, Oh S, et al. Metal-insulator transition in quasi-one-dimensional HfTe  in the few-chain limit. Phys Rev B
                                                                                 3
                    2019;100:4.  DOI
               109.      Cabana L, Ballesteros B, Batista E, et al. Synthesis of PbI  single-layered inorganic nanotubes encapsulated within carbon nanotubes.
                                                         2
                    Adv Mater 2014;26:2016-21.  DOI  PubMed
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