博碩士論文 110324018 詳細資訊




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姓名 林玟睿(Wen-Jui Lin)  查詢紙本館藏   畢業系所 化學工程與材料工程學系
論文名稱
(A Study on the Relationship Between the Manufacturing Methods of Graphitic-Carbon Nitride (g-C3N4) and their Hydrogen Storage Performance)
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摘要(中) 氫能源已被國際認可為未來清潔能源的主流。由於氫在燃料電池中與氧氣反應只會產生能量和水。因此,整個反應過程不會排放二氧化碳等溫室氣體,被認為有助於減緩全球暖化的發展。然而,實現氫經濟的一個瓶頸是缺乏安全有效的氫氣儲存方法。與壓力氫氣儲存相比,固態氫儲存被認為是一種安全有效的氫氣儲存方式。
  在這項研究中,旨在開發一種具有良好氫氣儲存性能且具有成本效益的材料。已經有文獻指出g-C3N4奈米管在室溫和中等壓力下可能儲存高達5.45 wt.%的氫氣。因此,本研究旨在使用高能量行星球磨機進一步提高g-C3N4奈米管的氫氣儲存能力。在這項工作中,通過將起始材料(三聚氰胺和三聚氰酸)在不同速度(50、70、80、90、100、110和240 rpm)下研磨2或5小時,然後在550°C下煅燒4小時,製備出了g-C3N4奈米管。觀察到所得到的g-C3N4s奈米管的比表面積與研磨轉速成正比變化。此外,還觀察到只有在球磨速度高於80 rpm時才形成管狀的g-C3N4。而這些管的直徑則與球磨機速度成反比。當行星式球磨機的速度增加到240 rpm時,只有在穿透式電子顯微鏡下才能解析出管的尺寸。上述觀察結果表明,使用高能量行星球磨機可以有效地製備具有管狀結構的g-C3N4。樣品的氫氣儲存能力是在室溫下,在最高13 MPa的壓力下通過氫氣PCI測定的。發現在行星式球磨速度為80到110 rpm之間製備的所有樣品的氫氣容量約為1.0 wt.%。然而,對於在行星式球磨中使用最高速度240 rpm製備的g-C3N4,其具有最高的比表面積,為122.2 cm2/g,以及在11.7 MPa壓力下最高的儲氫能力,達到1.724 wt.%。這表明通過高能量行星球磨機的研磨可以改變材料的表面電荷,從而有效增強其氫氣儲存性能。
  本次研究中還採用了第二種方法來製備g-C3N4奈米管。在這種自組裝方法中,將三聚氰胺與乙二醇及硝酸混合,形成超分子中間體,然後將中間體在550°C下煅燒2小時。所產生的g-C3N4奈米管具有更完整的管狀結構(樣品標記為CNNT-65)。與前一方法中產生的g-C3N4相比,觀察到CNNT-65的比表面積較低,為11.3 cm2/g。然而,在類似的氫氣充氣壓力下,它展現了與C-110(具有33.6 cm2/g的比表面積)相似的氫氣儲存能力。這可能歸因於更完整的奈米管結構。
  我們得出結論,通過上述兩種方法,都可以獲得g-C3N4奈米管。此外,1.724 wt.%的氫氣儲存能力和具經濟效益的起始材料使所產生的g-C3N4在氫氣儲存應用中非常具有潛力。
摘要(英) Hydrogen energy has been internationally recognized as the mainstream of clean energy for the future. Since hydrogen reacts with oxygen in the fuel cells to produce energy, only water is produced. Thus the entire reaction process does not emit greenhouse gases such as carbon dioxide, which is the main cause of the global warming. However, one of the bottle necks to the realisation of hydrogen economy is the lack of safe and effective way to store hydrogen. As compared to the pressurized hydrogen gas storage, solid-state hydrogen storage is considered to be a safe and effective way to store hydrogen.
In this research, the aim has been to develop a cost-effective material with good hydrogen storage properties. It has been suggested that g-C3N4 nanotubes have the potential to store up to 5.45 wt.% of hydrogen under room temperature and moderate pressure. Hence, this study aims to further enhance the hydrogen storage capacity of g-C3N4 nanotubes using a high-energy planetary ball mill. In this work, g-C3N4 nanotubes were produced by grinding the starting materials (melamine and cyanuric acid) at various speeds, specifically 50, 70, 80, 90, 100, 110, and 240 rpm, for a duration of 2 or 5 hours, followed by calcinating at 550 °C for 4 hours. It was observed that the resulting g-C3N4 nanotubes exhibited a variation in specific surface area proportional to the grinding speed. Additionally, it has been observed that the tubular g-C3N4 only formed when the ball milling speed was above 80 rpm. Furthermore, the diameter of these tubes was inversely proportional to the speed of the ball mill. When the speed of the planetary ball milling went up to 240 rpm, the size of the tube could only be resolved under the transmission electron microscope. The above observations suggest that the use of a high-energy planetary ball mill can effectively produce g-C3N4 with tubular structures. The hydrogen storage capacities of the samples were determined using a PCI at room temperature and under a pressure up to 13 MPa. It was found that all these samples produced under the planetary ball milling speed of 80 to 110 rpm yielded a hydrogen capacity around 1.0 wt.%. However, for the g-C3N4 produced using the highest speed of 240 rpm in the planetary ball milling, it has the highest specific surface area of 122.2 cm2/g and the highest storage capacity of 1.724 wt.% at a pressure of 11.7 MPa. This suggests that grinding through a high-energy planetary ball mill can alter the surface charge of the material, thereby effectively enhancing its hydrogen storage performance.
A second approach to fabricate g-C3N4 nanotubes has been adopted in this work. In this self-assembling method, melamine was mixed with ethylene glycol and nitric acid to form the supramolecular intermediate, and then the intermediate was calcinated at 550 °C for 2 hours. The so-produced g-C3N4 nanotubes have more complete tubular structures (sample labeled as CNNT-65). When compared with g-C3N4 produced in the previous method, it was observed that CNNT-65 which has a lower specific surface area of 11.3 cm2/g. However, it exhibited a similar hydrogen storage capacity to C-110 (with a specific surface area of 33.6 cm2/g), under similar hydrogen charging pressure. This might be attributed to the more complete nanotube structure.
We concluded that with both of the two methods above, g-C3N4 nanotubes could be obtained. Also, the hydrogen storage capacity of 1.724 wt.% and the cost-effective starting materials made the so-produced g-C3N4 very useful for hydrogen storage applications.
Keywords: Hydrogen storage; graphitic carbon nitride; nanotube; microstructure; high-energy ball milling
關鍵字(中) ★ 氫儲存
★ 石墨相氮化碳
★ 奈米管
★ 微觀結構
★ 高能球磨
關鍵字(英) ★ Hydrogen storage
★ graphitic carbon nitride
★ nanotube
★ microstructure
★ high-energy ball milling
論文目次 Table of Contents
摘要 i
Abstract ii
Acknowledgment iv
List of Figures viii
List of Tables x
Chapter 1 Introduction 1
1.1 Motivations 1
1.1.1 Hydrogen economy and hydrogen storage 1
1.1.2 Methods of storing hydrogen 3
1.1.3 Hydrogen storage materials 3
1.2 Objectives 4
Chapter 2 Literature Survey 6
2.1 Trends in the use of hydrogen energy 6
2.1.1 The world’s first hydrogen-powered train 8
2.1.2 The hydrogen refueling stations and hydrogen-powered buses 9
2.1.3 Hydrogen storage technology 11
2.1.4 Carbon-based hydrogen storage materials (carbon nanostructures) 17
2.2 Themes 20
2.2.1 Carbon nitride prepared from hard-templating 23
2.2.2 Molecular self-assembly as a self-template method to prepare g-C3N4 nanotube 25
2.2.3 Application of the ball milling process in the manufacturing of g-C3N4. 30
2.2.4 Other methods to produce high specific surface area g-C3N4 and enhance its hydrogen storage capacity 33
2.3 Summary 35
Chapter 3 Experimental Methodology 36
3.1 Materials and methods 36
3.1.1 Chemicals and materials 36
3.1.2 Planetary ball mill 36
3.1.3 Fabrication of g-C3N4 materials 38
Chapter 4 Results and discussion 41
4.1 Characterization 41
4.1.1 SEM/TEM observations on g-C3N4 produced 41
4.1.2 XRD characterization 44
4.1.3 FT-IR analysis 46
4.2 Hydrogen storage studies 48
4.2.1 Hydrogen storage characterization (PCI) 48
4.2.2 BET & PCI results 54
4.2.3 Comparison of the sample before and after undergoing PCI testing. 58
Chapter 5 Conclusion and Future Work 61
5.1 Conclusion 61
5.2 Future work 62
References 64
參考文獻 [1] "Building a low-carbon economy –
the UK’s contribution to tackling climate change."
[2] I. P. O. C. Change, "Ipcc," Climate change, 2014.
[3] M. Allen et al., "Special Report: Global Warming of 1.5 C," Intergovernmental Panel on Climate Change (IPCC), 2018.
[4] M. Steinberg, "Fossil fuel decarbonization technology for mitigating global warming," International Journal of Hydrogen Energy, vol. 24, no. 8, pp. 771-777, 1999/08 1999, doi: 10.1016/s0360-3199(98)00128-1.
[5] P. Panigrahi, A. Kumar, A. Karton, R. Ahuja, and T. Hussain, "Remarkable improvement in hydrogen storage capacities of two-dimensional carbon nitride (g-C3N4) nanosheets under selected transition metal doping," International Journal of Hydrogen Energy, vol. 45, no. 4, pp. 3035-3045, 2020/01 2020, doi: 10.1016/j.ijhydene.2019.11.184.
[6] "The Ministry of Energy of the Republic of Azerbaijan." https://reurl.cc/EoVez0 (accessed.
[7] "Chapter 1 - Review and outlook of world energy development," in Non-Fossil Energy Development in China, Y. Zhang et al. Eds. Oxford: Academic Press, 2019, pp. 1-36.
[8] P. A. Williams, "Projections for the geopolitical economy of oil after war in Iraq," Futures, vol. 38, no. 9, pp. 1074-1088, 2006/11/01/ 2006, doi: https://doi.org/10.1016/j.futures.2006.02.012.
[9] H. B. Ameur, X. Han, Z. Liu, and J. Peillex, "When did global warming start? A new baseline for carbon budgeting," Economic Modelling, vol. 116, p. 106005, 2022/11/01/ 2022, doi: https://doi.org/10.1016/j.econmod.2022.106005.
[10] "The world′s greenest transport system: hydrogen-powered trains hit the road in Germany in 2021." https://www.storm.mg/article/357120 (accessed.
[11] "Eco-friendly transport – the French manufacturer has announced the world′s first hydrogen-powered passenger train – which will be officially used in Germany in 2017." https://reurl.cc/Nq5nXn (accessed.
[12] "Building the world′s most environmentally friendly transport system "hydrogen train" on the road in Germany in 2021!" https://reurl.cc/V8Gn06 (accessed.
[13] "Hydrogen Green energy will be the biggest business opportunity in the next 50 years." https://kknews.cc/science/vz6zbl2.html (accessed.
[14] "Can′t see the taillights! South Korea′s 10,000 hydrogen energy vehicles are on the road." https://www.cw.com.tw/article/5125510 (accessed.
[15] "South Korea targets over 2,000 hydrogen buses by 2026." https://www.argusmedia.com/en/news/2446265-south-korea-targets-over-2000-hydrogen-buses-by-2026 (accessed.
[16] "Hyundai Hydrogen Energy Series, National Policy." https://feature.u-car.com.tw/feature/article/74824 (accessed.
[17] "Create a new economy of hydrogen energy." https://www.businesstoday.com.tw/article/category/183015/post/202208170063/ (accessed.
[18] "KEPCO Successfully Demonstrates "Liquid Hydrogen Storage Technology" for the First Time in Korea." https://www.h2news.kr/news/article.html?no=8140 (accessed.
[19] "Hydrogen storage high-pressure gas cylinder." https://www.materialsnet.com.tw/DocView.aspx?id=48805 (accessed.
[20] A. M. Elberry, J. Thakur, A. Santasalo-Aarnio, and M. Larmi, "Large-scale compressed hydrogen storage as part of renewable electricity storage systems," International Journal of Hydrogen Energy, vol. 46, no. 29, pp. 15671-15690, 2021/04/26/ 2021, doi: https://doi.org/10.1016/j.ijhydene.2021.02.080.
[21] T. Hua et al., "Technical assessment of compressed hydrogen storage tank systems for automotive applications," International Journal of Hydrogen Energy, vol. 36, no. 4, pp. 3037-3049, 2011.
[22] Z. Jiang, Q. Pan, J. Xu, and T. Fang, "Current situation and prospect of hydrogen storage technology with new organic liquid," International Journal of Hydrogen Energy, vol. 39, no. 30, pp. 17442-17451, 2014.
[23] D. Saha and S. Deng, "Hydrogen adsorption on metal-organic framework MOF-177," Tsinghua Science and Technology, vol. 15, no. 4, pp. 363-376, 2010.
[24] T. Zhao, X. Ji, W. Jin, W. Yang, and T. Li, "Hydrogen storage capacity of single-walled carbon nanotube prepared by a modified arc discharge," Fullerenes, Nanotubes and Carbon Nanostructures, vol. 25, no. 6, pp. 355-358, 2017.
[25] R. Juarez-Mosqueda, A. Mavrandonakis, A. B. Kuc, L. G. Pettersson, and T. Heine, "Theoretical analysis of hydrogen spillover mechanism on carbon nanotubes," Frontiers in Chemistry, vol. 3, p. 2, 2015.
[26] Y. Lee et al., "A microstructural and neutron-diffraction study on the interactions between microwave-irradiated multiwalled carbon nanotubes and hydrogen," Journal of materials science, vol. 51, pp. 1308-1315, 2016.
[27] K. Hirose, Handbook of hydrogen storage: new materials for future energy storage. John Wiley & Sons, 2010.
[28] Y. Shang et al., "Developing sustainable FeTi alloys for hydrogen storage by recycling," Communications Materials, vol. 3, no. 1, p. 101, 2022.
[29] Y. Tan and X. Yu, "Chemical regeneration of hydrogen storage materials," RSC Advances, vol. 3, no. 46, pp. 23879-23894, 2013.
[30] J. Huo et al., "A review on hydrogen production from ammonia borane: Experimental and theoretical studies," Chinese Chemical Letters, p. 108280, 2023.
[31] W. Peschka and C. Carpetis, "Cryogenic hydrogen storage and refueling for automobiles," International Journal of Hydrogen Energy, vol. 5, no. 6, pp. 619-625, 1980.
[32] I. A. Hassan, H. S. Ramadan, M. A. Saleh, and D. Hissel, "Hydrogen storage technologies for stationary and mobile applications: Review, analysis and perspectives," Renewable and Sustainable Energy Reviews, vol. 149, p. 111311, 2021/10/01/ 2021, doi: https://doi.org/10.1016/j.rser.2021.111311.
[33] "An Overview of U.S. DOE’s Activities for Hydrogen Fuel Cell Technologies."
[34] A. Martínez-Mesa and G. Seifert, "Adsorption of molecular hydrogen on nanostructured surfaces," Revista Cubana de Física, vol. 31, no. 1, pp. 32-34, 2014.
[35] M. Simanullang and L. Prost, "Nanomaterials for on-board solid-state hydrogen storage applications," International Journal of Hydrogen Energy, 2022.
[36] A. Dillon et al., "NREL activities in DOE Carbon-based Materials Center of Excellence," Proc. of US DOE, Hydrogen Program Review, p. 35, 2005.
[37] "Materials-Based Hydrogen Storage." https://www.energy.gov/eere/fuelcells/materials-based-hydrogen-storage (accessed.
[38] M. Hirscher, "Hydrogen storage by cryoadsorption in ultrahigh‐porosity metal–organic frameworks," Angewandte Chemie International Edition, vol. 3, no. 50, pp. 581-582, 2011.
[39] H. Schlesinger, H. C. Brown, A. Finholt, J. R. Gilbreath, H. R. Hoekstra, and E. K. Hyde, "Sodium borohydride, its hydrolysis and its use as a reducing agent and in the generation of hydrogen1," Journal of the American Chemical Society, vol. 75, no. 1, pp. 215-219, 1953.
[40] B. Sakintuna, F. Lamari-Darkrim, and M. Hirscher, "Metal hydride materials for solid hydrogen storage: a review," International journal of hydrogen energy, vol. 32, no. 9, pp. 1121-1140, 2007.
[41] "Energy.gov." http://www.doe.gov (accessed.
[42] S. Iijima, "Helical microtubules of graphitic carbon," nature, vol. 354, no. 6348, pp. 56-58, 1991.
[43] T. Amirthan and M. Perera, "The role of storage systems in hydrogen economy: A review," Journal of Natural Gas Science and Engineering, p. 104843, 2022.
[44] A. C. Dillon, K. Jones, T. Bekkedahl, C. Kiang, D. Bethune, and M. Heben, "Storage of hydrogen in single-walled carbon nanotubes," Nature, vol. 386, no. 6623, pp. 377-379, 1997.
[45] A. Chambers, C. Park, R. T. K. Baker, and N. M. Rodriguez, "Hydrogen storage in graphite nanofibers," The journal of physical chemistry B, vol. 102, no. 22, pp. 4253-4256, 1998.
[46] Y. Ye et al., "Hydrogen adsorption and cohesive energy of single-walled carbon nanotubes," Applied physics letters, vol. 74, no. 16, pp. 2307-2309, 1999.
[47] X. Wu, P. Chen, J. Lin, and K. Tan, "Hydrogen uptake by carbon nanotubes," International Journal of Hydrogen Energy, vol. 25, no. 3, pp. 261-265, 2000.
[48] A. Badzian, T. Badzian, E. Breval, and A. Piotrowski, "Nanostructured, nitrogen-doped carbon materials for hydrogen storage," Thin Solid Films, vol. 398, pp. 170-174, 2001.
[49] Y. Chen et al., "Hydrogen storage in aligned carbon nanotubes," Applied Physics Letters, vol. 78, no. 15, pp. 2128-2130, 2001.
[50] M. Hirscher et al., "Hydrogen storage in carbon nanostructures," Journal of alloys and compounds, vol. 330, pp. 654-658, 2002.
[51] M. R. Smith, E. W. Bittner, W. Shi, J. K. Johnson, and B. C. Bockrath, "Chemical activation of single-walled carbon nanotubes for hydrogen adsorption," The Journal of Physical Chemistry B, vol. 107, no. 16, pp. 3752-3760, 2003.
[52] G. Ning, F. Wei, G. Luo, Q. Wang, Y. Wu, and H. Yu, "Hydrogen storage in multi-wall carbon nanotubes using samples up to 85 g," Applied Physics A, vol. 78, pp. 955-959, 2004.
[53] M. Shaijumon, N. Bejoy, and S. Ramaprabhu, "Catalytic growth of carbon nanotubes over Ni/Cr hydrotalcite-type anionic clay and their hydrogen storage properties," Applied surface science, vol. 242, no. 1-2, pp. 192-198, 2005.
[54] D. Luxembourg, G. Flamant, E. Bêche, J.-L. Sans, J. Giral, and V. Goetz, "Hydrogen storage capacity at high pressure of raw and purified single wall carbon nanotubes produced with a solar reactor," International journal of hydrogen energy, vol. 32, no. 8, pp. 1016-1023, 2007.
[55] J. J. Niu, J. N. Wang, Y. Jiang, L. F. Su, and J. Ma, "An approach to carbon nanotubes with high surface area and large pore volume," Microporous and Mesoporous Materials, vol. 100, no. 1-3, pp. 1-5, 2007.
[56] S.-u. Rather, R. Zacharia, S. W. Hwang, and K. S. Nahm, "Hydrogen uptake of palladium-embedded MWCNTs produced by impregnation and condensed phase reduction method," Chemical Physics Letters, vol. 441, no. 4-6, pp. 261-267, 2007.
[57] M. Sankaran, B. Viswanathan, and S. S. Murthy, "Boron substituted carbon nanotubes—How appropriate are they for hydrogen storage?," International Journal of Hydrogen Energy, vol. 33, no. 1, pp. 393-403, 2008.
[58] L. Zubizarreta, A. Arenillas, and J. Pis, "Carbon materials for H2 storage," International Journal of Hydrogen Energy, vol. 34, no. 10, pp. 4575-4581, 2009.
[59] P. Chen, X. Wu, J. Lin, and K. Tan, "High H2 uptake by alkali-doped carbon nanotubes under ambient pressure and moderate temperatures," Science, vol. 285, no. 5424, pp. 91-93, 1999.
[60] R. T. Yang, "Hydrogen storage by alkali-doped carbon nanotubes–revisited," Carbon, vol. 38, no. 4, pp. 623-626, 2000.
[61] A. Züttel, "Hydrogen storage methods," Naturwissenschaften, vol. 91, pp. 157-172, 2004.
[62] P. Kowalczyk, R. Holyst, M. Terrones, and H. Terrones, "Hydrogen storage in nanoporous carbon materials: myth and facts," Phys Chem Chem Phys, vol. 9, no. 15, pp. 1786-92, Apr 21 2007, doi: 10.1039/b618747a.
[63] I. K. Muritala, D. Guban, M. Roeb, and C. Sattler, "High temperature production of hydrogen: Assessment of non-renewable resources technologies and emerging trends," international journal of hydrogen energy, vol. 45, no. 49, pp. 26022-26035, 2020.
[64] R. Gadiou, C. MateiGhimbeu, and C. Vix-Guterl, "Hydrogen storage in activated carbon materials," Hydrogen Storage Materials, pp. 342-357, 2018.
[65] B. Panella, M. Hirscher, and S. Roth, "Hydrogen adsorption in different carbon nanostructures," Carbon, vol. 43, no. 10, pp. 2209-2214, 2005.
[66] S. J. Mahdizadeh and E. K. Goharshadi, "Hydrogen storage on graphitic carbon nitride and its palladium nanocomposites: A multiscale computational approach," International Journal of Hydrogen Energy, vol. 44, no. 16, pp. 8325-8340, 2019/03 2019, doi: 10.1016/j.ijhydene.2019.02.071.
[67] Z. Zhang and K. Cho, "<i>Ab initio</i>study of hydrogen interaction with pure and nitrogen-doped carbon nanotubes," Physical Review B, vol. 75, no. 7, 2007/02/21 2007, doi: 10.1103/physrevb.75.075420.
[68] G. Koh, Y.-W. Zhang, and H. Pan, "First-principles study on hydrogen storage by graphitic carbon nitride nanotubes," International Journal of Hydrogen Energy, vol. 37, no. 5, pp. 4170-4178, 2012/03 2012, doi: 10.1016/j.ijhydene.2011.11.109.
[69] J. Liebig, "Uber einige Stickstoff‐Verbindungen," Annalen der Pharmacie, vol. 10, no. 1, pp. 1-47, 1834.
[70] D. M. Teter and R. J. Hemley, "Low-compressibility carbon nitrides," Science, vol. 271, no. 5245, pp. 53-55, 1996.
[71] Q. Liang, Z. Li, Z. H. Huang, F. Kang, and Q. H. Yang, "Holey graphitic carbon nitride nanosheets with carbon vacancies for highly improved photocatalytic hydrogen production," Advanced Functional Materials, vol. 25, no. 44, pp. 6885-6892, 2015.
[72] H. Li, L. Wang, Y. Liu, J. Lei, and J. Zhang, "Mesoporous graphitic carbon nitride materials: synthesis and modifications," Research on Chemical Intermediates, vol. 42, pp. 3979-3998, 2016.
[73] B. Jürgens, E. Irran, J. Senker, P. Kroll, H. Müller, and W. Schnick, "Melem (2, 5, 8-triamino-tri-s-triazine), an important intermediate during condensation of melamine rings to graphitic carbon nitride: Synthesis, structure determination by X-ray powder diffractometry, solid-state NMR, and theoretical studies," Journal of the American Chemical Society, vol. 125, no. 34, pp. 10288-10300, 2003.
[74] J. Fang, H. Fan, M. Li, and C. Long, "Nitrogen self-doped graphitic carbon nitride as efficient visible light photocatalyst for hydrogen evolution," Journal of Materials Chemistry A, vol. 3, no. 26, pp. 13819-13826, 2015.
[75] Y. Chen et al., "Improvement of photocatalytic activity of high specific surface area graphitic carbon nitride by loading a co-catalyst," Rare Metals, vol. 38, pp. 468-474, 2019.
[76] X.-N. Wei, H.-L. Wang, X.-K. Wang, and W.-F. Jiang, "Facile fabrication of mesoporous g-C3N4/TiO2 photocatalyst for efficient degradation of DNBP under visible light irradiation," Applied Surface Science, vol. 426, pp. 1271-1280, 2017.
[77] Y. Zhang et al., "Synthesis and luminescence mechanism of multicolor-emitting g-C3N4 nanopowders by low temperature thermal condensation of melamine," Scientific reports, vol. 3, no. 1, pp. 1-8, 2013.
[78] Y.-J. Bai et al., "Solvothermal preparation of graphite-like C3N4 nanocrystals," Journal of crystal growth, vol. 247, no. 3-4, pp. 505-508, 2003.
[79] N. Chidhambaram and K. Ravichandran, "Single step transformation of urea into metal-free g-C3N4 nanoflakes for visible light photocatalytic applications," Materials Letters, vol. 207, pp. 44-48, 2017.
[80] Y.-P. Yuan et al., "Large impact of heating time on physical properties and photocatalytic H2 production of g-C3N4 nanosheets synthesized through urea polymerization in Ar atmosphere," International journal of hydrogen energy, vol. 38, no. 30, pp. 13159-13163, 2013.
[81] Z. Wang, W. Guan, Y. Sun, F. Dong, Y. Zhou, and W.-K. Ho, "Water-assisted production of honeycomb-like gC 3 N 4 with ultralong carrier lifetime and outstanding photocatalytic activity," Nanoscale, vol. 7, no. 6, pp. 2471-2479, 2015.
[82] R. Liu, Y. Bie, Y. Qiao, T. Liu, and Y. Song, "Design of g-C3N4/TiO2 nanotubes heterojunction for enhanced organic pollutants degradation in waste water," Materials Letters, vol. 251, pp. 126-130, 2019.
[83] L. Ming, H. Yue, L. Xu, and F. Chen, "Hydrothermal synthesis of oxidized gC 3 N 4 and its regulation of photocatalytic activity," Journal of materials chemistry A, vol. 2, no. 45, pp. 19145-19149, 2014.
[84] F. Fina, S. K. Callear, G. M. Carins, and J. T. Irvine, "Structural investigation of graphitic carbon nitride via XRD and neutron diffraction," Chemistry of Materials, vol. 27, no. 7, pp. 2612-2618, 2015.
[85] S. C. Yan, Z. S. Li, and Z. G. Zou, "Photodegradation Performance of g-C<sub>3</sub>N<sub>4</sub> Fabricated by Directly Heating Melamine," Langmuir, vol. 25, no. 17, pp. 10397-10401, 2009/07/16 2009, doi: 10.1021/la900923z.
[86] I. Alves, G. Demazeau, B. Tanguy, and F. Weill, "On a new model of the graphitic form of C3N4," Solid State Communications, vol. 109, no. 11, pp. 697-701, 1999/03 1999, doi: 10.1016/s0038-1098(98)00631-0.
[87] H. Montigaud, B. Tanguy, G. Demazeau, I. Alves, M. Birot, and J. Dunogues, "Solvothermal synthesis of the graphitic form of C3N4 as macroscopic sample," Diamond and Related Materials, vol. 8, no. 8-9, pp. 1707-1710, 1999/08 1999, doi: 10.1016/s0925-9635(99)00054-0.
[88] Y. Gu, L. Chen, L. Shi, J. Ma, Z. Yang, and Y. Qian, "Synthesis of C3N4 and graphite by reacting cyanuric chloride with calcium cyanamide," Carbon, vol. 41, no. 13, pp. 2674-2676, 2003, doi: 10.1016/s0008-6223(03)00357-9.
[89] T. Komatsu, "Attempted chemical synthesis of graphite-like carbon nitride," Journal of Materials Chemistry, vol. 11, no. 3, pp. 799-801, 2001, doi: 10.1039/b007673m.
[90] R. C. Dante, P. Martín-Ramos, A. Correa-Guimaraes, and J. Martín-Gil, "Synthesis of graphitic carbon nitride by reaction of melamine and uric acid," Materials Chemistry and Physics, vol. 130, no. 3, pp. 1094-1102, 2011/11 2011, doi: 10.1016/j.matchemphys.2011.08.041.
[91] J. Liu, J. Huang, H. Zhou, and M. Antonietti, "Uniform Graphitic Carbon Nitride Nanorod for Efficient Photocatalytic Hydrogen Evolution and Sustained Photoenzymatic Catalysis," ACS Applied Materials & Interfaces, vol. 6, no. 11, pp. 8434-8440, 2014/06/11 2014, doi: 10.1021/am501319v.
[92] J. Ye, H. Zhang, R. Yang, X. Li, and L. Qi, "Morphology-controlled synthesis of SnO(2) nanotubes by using 1D silica mesostructures as sacrificial templates and their applications in lithium-ion batteries," Small, vol. 6, no. 2, pp. 296-306, Jan 2010, doi: 10.1002/smll.200901815.
[93] Z. Mo et al., "Self-assembled synthesis of defect-engineered graphitic carbon nitride nanotubes for efficient conversion of solar energy," Applied Catalysis B: Environmental, vol. 225, pp. 154-161, 2018/06 2018, doi: 10.1016/j.apcatb.2017.11.041.
[94] C. Zhou, R. Shi, L. Shang, L.-Z. Wu, C.-H. Tung, and T. Zhang, "Template-free large-scale synthesis of g-C3N4 microtubes for enhanced visible light-driven photocatalytic H2 production," Nano Research, vol. 11, no. 6, pp. 3462-3468, 2018/05/22 2018, doi: 10.1007/s12274-018-2003-2.
[95] J. Gao, Y. Zhou, Z. Li, S. Yan, N. Wang, and Z. Zou, "High-yield synthesis of millimetre-long, semiconducting carbon nitride nanotubes with intense photoluminescence emission and reproducible photoconductivity," Nanoscale, vol. 4, no. 12, p. 3687, 2012, doi: 10.1039/c2nr30777d.
[96] M. Tahir et al., "Tubular graphitic-C3N4: a prospective material for energy storage and green photocatalysis," Journal of Materials Chemistry A, vol. 1, no. 44, p. 13949, 2013, doi: 10.1039/c3ta13291a.
[97] Y. Song et al., "Porous carbon nitride nanotubes efficiently promote two-electron O2 reduction for photocatalytic H2O2 production," Journal of Alloys and Compounds, vol. 934, p. 167901, 2023/02/10/ 2023, doi: https://doi.org/10.1016/j.jallcom.2022.167901.
[98] W. Xiang et al., "Enhanced adsorption performance and governing mechanisms of ball-milled biochar for the removal of volatile organic compounds (VOCs)," Chemical Engineering Journal, vol. 385, p. 123842, 2020/04/01/ 2020, doi: https://doi.org/10.1016/j.cej.2019.123842.
[99] H. Wu et al., "Sustainable preparation of graphene-analogue boron nitride by ball-milling for adsorption of organic pollutants," Chinese Journal of Chemical Engineering, vol. 42, pp. 73-81, 2022/02/01/ 2022, doi: https://doi.org/10.1016/j.cjche.2021.09.025.
[100] R. Guo, Y. S. Tseng, I. Retita, G. Bahmanrokh, B. Arkhurst, and S. L. I. Chan, "A detailed experimental comparison on the hydrogen storage ability of different forms of graphitic carbon nitride (bulk, nanotubes and sheets) with multiwalled carbon nanotubes," Materials Today Chemistry, vol. 30, p. 101508, 2023/06/01/ 2023, doi: https://doi.org/10.1016/j.mtchem.2023.101508.
[101] Z. Heydariyan, R. Monsef, and M. Salavati-Niasari, "Insights into impacts of Co3O4-CeO2 nanocomposites on the electrochemical hydrogen storage performance of g-C3N4: Pechini preparation, structural design and comparative study," Journal of Alloys and Compounds, vol. 924, p. 166564, 2022/11 2022, doi: 10.1016/j.jallcom.2022.166564.
[102] A. A. S. Nair, R. Sundara, and N. Anitha, "Hydrogen storage performance of palladium nanoparticles decorated graphitic carbon nitride," International Journal of Hydrogen Energy, vol. 40, no. 8, pp. 3259-3267, 2015/03 2015, doi: 10.1016/j.ijhydene.2014.12.065.
[103] M. Valian, M. Masjedi-Arani, and M. Salavati-Niasari, "Sol-gel synthesis of DyFeO3/CuO nanocomposite using Capsicum Annuum extract: Fabrication, structural analysis, and assessing the impacts of g-C3N4 on electrochemical hydrogen storage behavior," Fuel, vol. 306, p. 121638, 2021/12 2021, doi: 10.1016/j.fuel.2021.121638.
[104] R. Tang, H. Wang, X. Dong, S. Zhang, L. Zhang, and F. Dong, "A ball milling method for highly dispersed Ni atoms on g-C(3)N(4) to boost CO(2) photoreduction," J Colloid Interface Sci, vol. 630, no. Pt B, pp. 290-300, Jan 15 2023, doi: 10.1016/j.jcis.2022.10.110.
[105] Y. Zhang, B. Yang, J. Fan, and L. Ma, "A mechanically synthesized SiO2–Fe metal matrix composite for effective dechlorination of aqueous 2-chlorophenol: the optimum of the preparation conditions," RSC Advances, 10.1039/C6RA12889K vol. 6, no. 80, pp. 76867-76873, 2016, doi: 10.1039/C6RA12889K.
[106] P. Wang, J. Hu, T. Liu, G. Han, W.-m. Ma, and J. Li, "New insights into ball-milled zero-valent iron composites for pollution remediation: An overview," Journal of Cleaner Production, vol. 385, p. 135513, 2023/01/20/ 2023, doi: https://doi.org/10.1016/j.jclepro.2022.135513.
[107] Y. K. Cheng, S. Obata, and Y. Nishina, "Ball mill enhances the functionalization of boron nitride: The application for polyimide fillers," FlatChem, vol. 39, p. 100489, 2023/05/01/ 2023, doi: https://doi.org/10.1016/j.flatc.2023.100489.
[108] B. Murty, M. M. Rao, and S. Ranganathan, "Milling maps and amorphization during mechanical alloying," Acta Metallurgica et Materialia, vol. 43, no. 6, pp. 2443-2450, 1995.
[109] M. Magini, A. Iasonna, and F. Padella, "Ball milling: an experimental support to the energy transfer evaluated by the collision model," Scripta Materialia, vol. 34, no. 1, 1996.
[110] N. Burgio, A. Iasonna, M. Magini, S. Martelli, and F. Padella, "Mechanical alloying of the Fe− Zr system. Correlation between input energy and end products," Il nuovo cimento D, vol. 13, no. 4, pp. 459-476, 1991.
[111] L. Ge, C. Han, J. Liu, and Y. Li, "Enhanced visible light photocatalytic activity of novel polymeric g-C3N4 loaded with Ag nanoparticles," Applied Catalysis A: General, vol. 409-410, pp. 215-222, 2011/12/15/ 2011, doi: https://doi.org/10.1016/j.apcata.2011.10.006.
[112] F.-Y. Su, C.-Q. Xu, Y.-X. Yu, and W.-D. Zhang, "Carbon Self-Doping Induced Activation of n-π* Electronic Transitions of g-C3N4Nanosheets for Efficient Photocatalytic H2Evolution," ChemCatChem, vol. 8, no. 22, pp. 3527-3535, 2016, doi: 10.1002/cctc.201600928.
[113] Z. Mo et al., "Engineering oxygen into ultrathin graphitic carbon nitride: synergistic improvement of electron reduction and charge carrier dynamics for efficient photocatalysis," Materials Today Chemistry, vol. 25, p. 100956, 2022.
[114] W. Liu et al., "Fabrication of ultra-thin g-C3N4 nanoplates for efficient visible-light photocatalytic H2O2 production via two-electron oxygen reduction," Chemical Engineering Journal, vol. 425, p. 130615, 2021.
[115] F. Fina, S. K. Callear, G. M. Carins, and J. T. S. Irvine, "Structural Investigation of Graphitic Carbon Nitride via XRD and Neutron Diffraction," Chemistry of Materials, vol. 27, no. 7, pp. 2612-2618, 2015/04/14 2015, doi: 10.1021/acs.chemmater.5b00411.
[116] M. Inagaki, T. Tsumura, T. Kinumoto, and M. Toyoda, "Graphitic carbon nitrides (g-C3N4) with comparative discussion to carbon materials," Carbon, vol. 141, pp. 580-607, 2019/01/01/ 2019, doi: https://doi.org/10.1016/j.carbon.2018.09.082.
[117] X. She et al., "Exfoliated graphene-like carbon nitride in organic solvents: enhanced photocatalytic activity and highly selective and sensitive sensor for the detection of trace amounts of Cu2+," Journal of Materials Chemistry A, vol. 2, no. 8, p. 2563, 2014, doi: 10.1039/c3ta13768f.
[118] X. Wang et al., "Supramolecular precursor strategy for the synthesis of holey graphitic carbon nitride nanotubes with enhanced photocatalytic hydrogen evolution performance," Nano Research, vol. 12, no. 9, pp. 2385-2389, 2019/03/08 2019, doi: 10.1007/s12274-019-2357-0.
[119] S. Sunasee et al., "Sonophotocatalytic degradation of bisphenol A and its intermediates with graphitic carbon nitride," Environmental Science and Pollution Research, vol. 26, no. 2, pp. 1082-1093, 2019/01/01 2019, doi: 10.1007/s11356-017-8729-7.
[120] Q. Han, Z. Cheng, B. Wang, H. Zhang, and L. Qu, "Significant Enhancement of Visible-Light-Driven Hydrogen Evolution by Structure Regulation of Carbon Nitrides," ACS Nano, vol. 12, no. 6, pp. 5221-5227, 2018/06/26 2018, doi: 10.1021/acsnano.7b08100.
[121] J. Liu, W. Fang, Z. Wei, Z. Qin, Z. Jiang, and W. Shangguan, "Efficient photocatalytic hydrogen evolution on N-deficient g-C3N4 achieved by a molten salt post-treatment approach," Applied Catalysis B: Environmental, vol. 238, pp. 465-470, 2018/12/15/ 2018, doi: https://doi.org/10.1016/j.apcatb.2018.07.021.
[122] E. Boateng and A. Chen, "Recent advances in nanomaterial-based solid-state hydrogen storage," Materials Today Advances, vol. 6, p. 100022, 2020/06/01/ 2020, doi: https://doi.org/10.1016/j.mtadv.2019.100022.
[123] "<20221212 JIS H 7201-2007_PCI measurement_r20221212.pdf>."
[124] "<Lemmon 2008.pdf>."
[125] G. M. Lu and X. S. Zhao, Nanoporous materials: science and engineering. World Scientific, 2004.
指導教授 陳立業(Sammy Lap Ip Chan) 審核日期 2023-8-19
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