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Gunawan Setia Prihandana
"Nanoporous polyethersulfone (PES) membrane is widely used as a filtration membrane in hemodialysis systems. Unfortunately, it has low blood compatibility, and induces blood clots that adhere to the membrane’s surface during dialysis treatment. This paper reports on a review of surface modification that is used to improve the PES membrane’s blood compatibility. The method consists of applying two coating materials, in the form of parylene and fluorinated diamond-like carbon (F-DLC) films, onto the membrane’s surface. The parylene film is deposited on the diffusion layer of the membrane surface using glycerin liquid, while the F-DLC film is specially coated on the supporting layer of the membrane. The unique property of parylene, which has the characteristics of conformal coating, prevents the parylene from being coated on the supporting layer of the membrane. Conversely, F-DLC film, which is hard, fragile and has a less conformal coating than parylene, is only meant to be coated on the supporting layer. Finally, the coated membranes, along with the bare PES membrane, are compared and investigated under a long-term diffusion test to assess their permeability and blood compatibility. The experiment results show that both coating materials have the capacity to improve the membrane’s blood compatibility in different ways."
Depok: Faculty of Engineering, Universitas Indonesia, 2015
UI-IJTECH 6:6 (2015)
Artikel Jurnal  Universitas Indonesia Library
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Indah Uswatun Hasanah
"Telah dilakukan pelapisan diamond-like carbon (DLC) dengan metode plasma enhanced chemical vapour deposition (PECVD). Variasi parameter jenis gas, temperatur, tekanan, dan architecture coating dilakukan untuk mengetahui karakteristik lapisan diamond-like carbon yang terbentuk. Diamond dan grafit adalah alotrop karbon yang paling banyak diketahui. Diamond merupakan mineral alam yang paling keras yang memiliki struktur hibridisasi sp3 dan memiliki sifat ketahanan terhadap abrasive. Sedangkan grafit memiliki sifat yang lunak dengan struktur hibridisasi sp2. Diamond-like carbon adalah bentuk karbon amorf metastabil yang memiliki hibridasi sp3 dan sp2.
Dalam penelitian ini dilakukan rekayasa lapisan diamod-like carbon di atas permukaan substrat AISI D2 dengan metode chemical vapour deposition berupa plasma lucutan pijar yang biasa disebut plasma enhanced chemical vapour deposition. Digunakan liquid petroleum gas (LPG) sebagai sumber gas hidrokarbon yang lebih murah dan mudah di dapat. Selain itu juga dilakukan variasi parameter tempespratur dan tekanan untuk mengontrol rasio sp3/sp2. Selanjutnya architecture coating dengan metode double layer dipilih sebagai upaya untuk memperbaiki lapisan single layer. Karakterisasi raman dilakukan untuk membuktikan pembentukan lapisan diamond- like carbon serta rasio ID/IG (Intensity Graphitic/Intensity Disorder). Selain itu pengujian mekanik dan keausan dilakukan untuk mengetahui hubungan rasio sp3/sp2 terhadap rekayasa yang telah dilakukan.
Penggunaan reaktan gas LPG sebagai sumber gas hidrokarbon untuk pelapisan berhasil meningkatkan nilai kekerasan lebih besar yaitu 418,08 HV dibandingkan dengan nilai kekerasan menggunakan gas C2H2 (388,58 HV). Selain itu penggunaan gas LPG menghasilkan CoF lebih kecil sebesar 5,52 x 10-3 sedangkan gas C2H2 didapatkan 7,59 x 10-3. Hal ini dikarenakan rasio H/C pada LPG yang lebih besar yaitu 2,3 sedangkan pada C2H2 yaitu 1. Daya lekat yang dimiliki lapisan dengan gas LPG maupun gas C2H2 memiliki kriteria klasifikasi yang sama yaitu 5B. Didapatkan ketebalan lapisan menggunakan gas LPG lebih besar yaitu 38,65 µm, sedangkan lapisan dengan gas C2H2 sebesar 25,7 µm. Ketebalan ini dipengaruhi oleh kandungan karbon di permukaan, didapatkan bahwa kandungan karbon LPG sebesar 50,57% sedangkan pada gas C2H2 sebesar 35,9%. Nilai rasio ID/IG penggunaan gas LPG berhasil menurunkan rasio yaitu 1.17 dibandingkan dengan gas C2H2 yaitu sebesar 1.31. Semakin kecil nilai rasio maka akan semakin bear rasio sp3/sp2 nya, hal ini akan memperbaiki sifat mekanik di permukaan.
Pengaruh parameter temperatur dan tekanan pelapisan juga telah dilakukan untuk merekayasa lapisan diamond-like carbon. Didapatkan bahwa nilai kekerasan terbesar terjadi di tekanan 1.6 mbar sebesar 445,51 HV, sedangkan pada temperatur yang lebih rendah yaitu 400 oC dihasilkan kekerasan yang lebih besar yaitu 448,06 HV dibandingkan nilai kekerasan pada temperatur yang lebih tinggi (450 oC). Kenaikan tekanan pada 1.6 mbar berhasil menurunkan CoF menjadi 1.3 x10-3. Selain itu juga pada temperatur 400oC dihasilkan nilai CoF yang lebih kecil sebesar 1,15 x10-3, sedangkan pada temperatur 450oC didapatkan 5,52 x10-3. Hal ini dikarenakan kenaikan tekanan akan menghasilkan volume gas yang meningkat dan menghasilkan deposisi yang semakin banyak di permukaan substart yang menyebabkan kekerasan dan ketahanan ausnya meningkat. Kemudian pada temperatur rendah akan menghasilkan tumbukan antar gas dengan energi yang lebih kecil untuk menghasil sp3 lebih banyak, sehingga hal ini menyebabkan peningkatan kekerasan dan ketahanan keausan pada lapisan DLC. Daya lekat yang dimiliki lapisan diamond-like carbon pada semua varisasi temperatur dan tekanan memiliki kriteria klasifikasi yang sama yaitu 5B. Peningkatan temperatur berhasil meningkatkan ketebalan yaitu 38,65 µm. Sedangkan peningkatan ketebalan lapisan didapatkan pada tekanan yang rendah yaitu 1.2 mbar sebesar 28,9 µm. Kenaikan tekanan pada 1.6 mbar berhasil menurunkan rasio ID/IG sebesar 0,84 dibandingkan pada tekanan 1.4 dan 1.2 mbar masing-masing sebesar; 0,96 dan 1,17. Penurunan temperatur terbukti berhasil menurunkan rasio ID/IG sebesar 0,78. Semakin kecil nilai rasio maka akan semakin bear rasio sp3/sp2 nya, hal ini akan memperbaiki sifat mekanik di permukaan.
Selain pelapisan single layer, architecture coating dengan metode double layer telah dilakukan untuk memperbaiki sifat lapisan single layer. Kemudian pengembangan lapisan interlayer kromium juga dilakukan sebagai metode architecture coating lainnya. Pada tahap penelitian architecture coating diperoleh dengan metode double layer Rekayasa 1 didapatkan nilai kekerasan 438,7 HV dan CoF sebesar 2.9x10-3. Hal ini dikarenakan pengaruh gas LPG pada tahap 2 di rekayasa 1 yaitu penggunaan gas LPG, tahap akhir disetiap rekayasa menentukan sifat dari lapisan DLC. Daya lekat yang dimiliki architecture coating Rekayasa 1 dan Rekayasa 2 juga memiliki kriteria klasisfikasi yang sama dengan lapisan diamond-like carbon single layer yaitu 5B. Selain itu juga ketebalan lapisan Rekayasa 1 dan Rekayasa 2 didapatkan masing masing; 30,1 µm dan 24,3 µm. Hal ini dikarenakan jumlah kandungan karbon di permukaan pada Rekayasa 1 lebih besar yaitu 48,74% dan pada Rekayasa 2 yaitu sebesar 29,08%. Architecture coating Rekayasa 1 memiliki nilai rasio ID/IG yang lebih kecil dibandingkan Rekayasa 2 yaitu masing-masing; 0,89 dan 0,96. Semakin kecil nilai rasio maka akan semakin besar rasio sp3/sp2 nya, hal ini akan memperbaiki sifat mekanik di permukaan. Lapisan interlayer chromium pada rekayasa parameter arus dan waktu pelapisan berhasil memperbaiki sifat mekanik dan ketahanan aus subtrat AISI D2. Kenaikan nilai kekerasan seiring dengan penurunan laju keausan yang mencapai 2,85 x 10-6. peningkatan arus listrik meningkatkan migrasi ion chromium dari larutan elektrolit ke katoda dan menghasilkan lebih banyak chromium di permukaan.

A diamond-like carbon coating has been carried out using the plasma enhanced chemical vapor deposition method. Variations in the parameters of gas type, temperature, pressure, and architecture coating were carried out to determine the characteristics of the diamond-like carbon layer formed. Diamond and graphite are the most widely known allotropes of carbon. Diamond is the hardest mineral with an sp3 hybridized structure and abrasive resistant properties. Meanwhile, carbon has a soft nature with an sp2 hybridization structure. Diamond-like carbon is a metastable amorphous carbon form with sp3 and sp2 hybridization.
In this study, we fabricate diamond-like carbon coatings on AISI D2 substrates using glow discharge plasma-enhanced chemical vapor deposition. LPG gas is used as a cheap and readily available source of hydrocarbon gas. In addition, we modified the temperature and pressure parameters to control the sp3/sp2 ratio. In addition, a double- layer coating structure was chosen to improve the single-layer coating. Raman characterization was performed to demonstrate the formation of diamond-like carbon layers and the sp3/sp2 ratio. Additionally, mechanical and abrasion tests were performed to determine the relationship between the sp3/sp2 ratio and the technique performed.
Using LPG gas reactants as a source of hydrocarbon gas for coatings increased the hardness value to , 418.08 HV as compared to 388.58 HV when using C2H2 gas reactants. In addition, using LPG gas resulted in a CoF of 5.52 x 10-3, whereas C2H2 gas yielded 7.59 x 10-3. This is because the ratio of hydrogen to carbon in LPG is greater than in C2H2; 2.3, 1 respectively. The adhesion of the coating with LPG gas and C2H2 gas has the same classification, 5B, as the adhesion of the coating with C2H2 gas. It was determined that the layer with LPG gas was thicker, measuring 38.65 µm, than the layer with C2H2 gas, which measured 25.7 µm. This thickness is influenced by the carbon content on the surface; it was determined that the carbon content of LPG was 50.57 % while it was 35.9% for C2H2 gas. Using LPG gas, the ID/IG ratio decreased to 1.17 from 1.31 when C2H2 gas was utilized. The greater the sp3/sp2 ratio, the better the mechanical properties of the surface, the smaller the ratio.
The influence of coating temperature and pressure parameters has also been carried out to engineer diamond-like carbon coatings. At a pressure of 1.6 mbar, the highest hardness value was 445.51 HV, while at a lower temperature of 400 oC, the hardness value was 448.06 HV, which was greater than the hardness value at a higher temperature (450 oC). The pressure increase at 1.6 mbar was able to decrease the CoF to 1.3 x 10-3. In addition, a CoF value of 1.15 x10-3 was measured at 400oC, whereas 5.52 x10-3 was measured at 450oC. This is due to the fact that an increase in pressure will result in an increase in gas volume, leading to an increase in deposition on the surface of the substrate, thereby increasing its hardness and wear resistance. Then, at low temperatures, encounters between gases with less energy produce more sp3, resulting in an increase in the DLC layer's hardness and wear resistance. The adhesion of the diamond-like carbon layer is classified as 5B regardless of variations in temperature and pressure. Temperature increase resulted in a thickness increase of 38.65 m. While the increase in layer thickness was achieved at a low pressure of 1.2 mbar and 28.9 µm, it was observed at a thickness of 28.9 µm. Increased pressure at 1.6 mbar decreased the ID/IG ratio by 0.84 compared to pressures of 1.4 and 1.2 mbar, by 0.96 and 1.17 respectively. The ID/G ratio was successfully decreased by 0.78 by lowering the temperature. The greater the sp3/sp2 ratio, the better the mechanical properties of the surface, the smaller the ratio.
In order to enhance the properties of single layer coating, architecture coating with double layer method has also been implemented. The development of the chromium interlayer layer as an additional architectural coating method followed. At the architectural coating research stage, the double layer Design 1 method yielded a coating with a hardness of 438.7 and a CoF of 2.9 x 10-6. This is due to the effect of LPG gas in stage 2 of design 1. The final stage of this design affects the characteristics of the DLC layer. The adhesive strength of Design 1 and Design 2 is also classified as 5B, the same as the single-layer diamond-like carbon coating. In addition, the thickness of Design 1 and Design 2 layers were determined to be 30,1 µm and 24,3 µm, respectively. This is because the surface carbon content of Design 1 is 48.74% higher than Design 2, which is 29.08%. Design 1's architectural coating has a lower ID/G ratio than Design 2's; 0.89 and 0.96, respectively. The surface's mechanical properties will be enhanced as the ratio decreases and the sp3/sp2 ratio increases. The mechanical properties and wear resistance of the AISI D2 substrate were enhanced by the chromium interlayer coating on the current and coating time parameter optimization. The increase in hardness value corresponded to the 2.85 x 10-6 decrease in wear rate. The increase in ecurrent increases the migration of chromium ions from the electrolyte solution to the cathode, resulting in a greater concentration of chromium on the surface.
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Depok: Fakultas Teknik Universitas Indonesia, 2023
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UI - Disertasi Membership  Universitas Indonesia Library
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Muhamad Farhan Robani
"Teknologi pada era industri 4.0 menuntut kebutuhan akan perangkat teknologi yang semakin canggih namun dengan berat yang semakin ringan dan ukuran yang lebih kecil. Untuk memenuhi kebutuhan tersebut, proses manufaktur berkembang kearah pembuatan komponen elektronik mikro yang diproduksi dengan teknik fabrikasi mikro (Microforming). Komponen dalam proses microforming yang paling berpengaruh yaitu cetakan (dies), dimana gesekan antarmuka antara permukaan cetakan dengan benda kerja dapat berpengaruh terhadap hasil produk akhir serta dapat memperpendek umur pakai cetakan. Untuk mengatasi masalah ini dapat diberikan pelapisan permukaan cetakan dengan diamond-like carbon (DLC). Studi literatur ini mempelajari pelapisan DLC pada permukaan cetakan microforming dengan membandingkan data penelitian terhadap koefisien friksi dan laju keausan. Hasil perbandingan pelapisan DLC dengan teknik physical vapour deposition (PVD) pada permukaan cetakan baja AISI D2 menghasilkan pengurangan nilai koefisien friksi hingga 50% dan penurunan laju keausan sebesar 2-6 kali lipat lebih kecil. Variasi penambahan gas Ne ke dalam gas Ar pada proses pelapisan DLC menghasilkan pengurangan koefisien friksi beserta laju keausan. Ketahanan aus lapisan DLC menunjukkan nilai koefisien friksi dan laju keausan terendah bila dibandingkan lapisan tahan aus lain.

Technology in the industrial era 4.0 demands the need for increasingly sophisticated technological devices but with lighter weight and smaller sizes. To meet these needs, the manufacturing process has been developing towards the manufacture of micro-electronic components which are manufactured using micro fabrication techniques (Microforming). The component in microforming process that has the most influence is the die, where the interface friction between the surface of the die and the workpiece can affect the final product and shorten the life cycle of the die. In this literature review, the DLC coating on the surface of the microforming die will be studied by comparing research data on the friction coefficient and wear rate. The comparison results of DLC coating with physical vapour deposition (PVD) techniques on the die surface, namely AISI D2 steel, have shown a reduction in the friction coefficient value of up to 50% and a decrease in wear rate of 2-6 times smaller. Then the variation with the addition of Ne gas into Ar gas in the DLC coating process obtained a reduction in the friction coefficient along with the wear rate. Finally, the wear resistance of the DLC coating is compared with other wear-resistant coatings, the lowest friction coefficient and wear rate were found in the DLC coating when compared to others."
Depok: Fakultas Teknik Universitas Indonesia, 2022
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UI - Skripsi Membership  Universitas Indonesia Library