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———– 2024 ———–

  • Boli, L.S.P., Rusydi, F., Khoirunisa, V., Saputro, A.G., Mahyuddin, M.H., Yoshizawa, K., Rachmawati, H. and kresno Dipojono, H., 2024. Theoretical Insights into the Carbon Linker Length Effects on the Radical Scavenging Activity of Curcumin. Malaysian Journal of Fundamental and Applied Sciences20(1), pp.125-154.
  • Kanata, S., Baqaruzi, S., Muhtar, A., Atmajaya, G.K. and Mustaqim, A., 2024. Optimal planning of solar energy using a sensitivity factor for rural electricity needs in an off-grid system (case study: Sebesi Island, South Lampung, Indonesia). Smart Science12(2), pp.343-356.
  • Putra, S.E.M. and Andirasdini, I.G., 2024. Density Functional Theory (DFT) and Quasi Harmonic Approximation (QHA) on Isotope effect of Methane Absorbed on Ag (111) Surface. INDONESIAN JOURNAL OF APPLIED PHYSICS14(1), pp.63-69.

———– 2023 ———–

  • Putra, S.E., Amalia, N. and Wella, S.A., 2023, November. Sodium adsorption and diffusion on monolayer germanium telluride. In AIP Conference Proceedings (Vol. 2906, No. 1). AIP Publishing.
  • Madinah, R., Rusydi, F., Fadilla, R. N., Khoirunisa, V., Boli, L. S., Saputro, A. G., … & Ahmad, A. (2023). First-Principles Study of the Dispersion Effects in the Structures and Keto–Enol Tautomerization of Curcumin. ACS omega8(37), 34022-34033.
  • Choi, Y.H., Putra, S.E.M., Shiozawa, Y., Tanaka, S., Mukai, K., Hamada, I., Morikawa, Y. and Yoshinobu, J., 2023. The quantitative study of methane adsorption on the Pt (997) step surface as the initial process for reforming reactions. Surface Science732, p.122284.
  • Nurfani, E., Wahjoedi, B.A., Fitri, A., Anrokhi, M.S., Maryana, O.F.T., Mustaqim, A., Friansa, K. and Kurniawan, R., 2023, August. Optical properties of ZnO: Fe films deposited by spray pyrolysis with different solvents. In AIP Conference Proceedings (Vol. 2623, No. 1). AIP Publishing.
  • Nurfani, E., Wahjoedi, B.A., Prameswari, L.A., Anrokhi, M.S., Mustaqim, A., Friansa, K. and Rahmawati, D., 2023, August. Effect of post-annealing on sensitivity enhancement of ZnO: Cu-based UV detector. In AIP Conference Proceedings (Vol. 2623, No. 1). AIP Publishing.
  • Hamada, I., Putra, S.E.M., Muttaqien, F., Hamamoto, Y., Inagaki, K., Shiotari, A., Yoshinobu, J. and Morikawa, Y., 2023. Adsorption and reaction of formic acid on Cu (111): The importance of the intermolecular interaction. In APS March Meeting Abstracts (Vol. 2023, pp. D32-008).
  • Nulhakim, L., Sasmita, I.A., Rozana, M. and Sudibyo, S., 2023. Comparison Study the Modeling of Limiting Current in the Magneto Electrodeposition of Vanadium using Neural-Wiener Model and Feed Forward Neural Network. Aceh International Journal of Science and Technology12(1), pp.33-39.
  • Drantantiyas, N.D.G., Yulita, W., Ridwan, N.T., Ramadhani, U.A., Kesuma, R.I., Rakhman, A.Z., Bagaskara, R., Miranto, A. and Mufidah, Z., 2023. Performasi Deteksi Jumlah Manusia Menggunakan YOLOv8. JASIEK (Jurnal Aplikasi Sains, Informasi, Elektronika dan Komputer)5(2), pp.63-68.
  • Dranatantiyas, N.D.G., Herliana, A., Suaif, A. and Mufidah, Z., 2023. Design of Programmable Logic Controller (PLC) on Smart Fertilizer Distribution System. Jurnal Multidisiplin Madani3(11), pp.2398-2410.
  • Ikhwanuddin, R., Sherly, A.F., Sari, E.P. and Drantantiyas, N.G.D., 2023, December. Measurement-based Auralisation to Predict Room Acoustics Quality of a Large Mosque with a Pyramid-Shaped Ceiling in Bandar Lampung. In Journal of Physics: Conference Series (Vol. 2673, No. 1, p. 012026). IOP Publishing.
  • Nulhakim, L., Prasetyo, I., Rozana, M. and Astuti, W., 2023. ZnO Production from EAF Solid Waste Using Hydrothermal Methods via Oxalate Precipitation. Aceh International Journal of Science and Technology12(1), pp.53-59.
  • Mege, C.R., Putra, S.E.M. and Siregar, S.I., 2023. Prediksi Temperatur Pengosongan Baterai Lithium Menggunakan Metode Autoregressive Integrated Moving Average. Innovative: Journal Of Social Science Research3(4), pp.10415-10425.
  • Dranatantiyas, N.D.G., Herliana, A., Suaif, A. and Mufidah, Z., 2023. Design of Programmable Logic Controller (PLC) on Smart Fertilizer Distribution System. Jurnal Multidisiplin Madani3(11), pp.2398-2410.
  • Siregar, S., Khoirunisa, V., Ramanda, M.R. and Fithriyani, D., 2023. Pemanfaatan Kulit Kakao menjadi Produk Kerupuk sebagai Solusi Gagal Panen Perkebunan Kakao di Desa Karang Radja. AMMA: Jurnal Pengabdian Masyarakat2(1), pp.39-43.

———– 2022 ———–

  • Takeyasu, K., Sawaki, Y., Imabayashi, T., Putra, S.E.M., Halim, H.H., Quan, J., Hamamoto, Y., Hamada, I., Morikawa, Y., Kondo, T. and Fujitani, T., 2022. Hydrogenation of formate species using atomic hydrogen on a Cu (111) model catalyst. Journal of the American Chemical Society144(27), pp.12158-12166.

———– 2021 ———–

  • Wong, Y., Halim, H.H., Khairudin, N.F., Pham, T.N., Putra, S.E., Hamamoto, Y., Inagaki, K., Hamada, I., Mohamed, A.R. and Morikawa, Y., 2021. Dry reforming of methane on cobalt catalysts: DFT-based insights into carbon deposition versus removal. The Journal of Physical Chemistry C125(40), pp.21902-21913.
  • Putra, S.E.M., Morikawa, Y. and Hamada, I., 2021. Isotope effect of methane adsorbed on fcc metal (1 1 1) surfaces. Chemical Physics Letters780, p.138943.
  • Khoirunisa, V., Rusydi, F., Boli, L.S., Saputro, A.G., Rachmawati, H., Nakanishi, H., Kasai, H. and Dipojono, H.K., 2021. Computational Investigation on the∙ OOH Scavenging Sites of Gnetin C. Food Biophysics16(3), pp.337-345.
  • Putra, S.E.M., Muttaqien, F., Hamamoto, Y., Inagaki, K., Shiotari, A., Yoshinobu, J., Morikawa, Y. and Hamada, I., 2021. Theoretical study on adsorption and reaction of polymeric formic acid on the Cu (111) surface. Physical Review Materials5(7), p.075801.
  • Shiotari, A., Putra, S.E.M., Shiozawa, Y., Hamamoto, Y., Inagaki, K., Morikawa, Y., Sugimoto, Y., Yoshinobu, J. and Hamada, I., 2021. Role of intermolecular interactions in the catalytic reaction of formic acid on Cu (111). Small17(20), p.2008010.
  • Halim, H.H., Putra, S.E.M., Muttaqien, F., Hamada, I., Inagaki, K., Hamamoto, Y. and Morikawa, Y., 2021. Multi-scale Simulation of Equilibrium Step Fluctuations on Cu (111) Surfaces. ACS omega6(8), pp.5183-5196.

———– 2021 ———–

  • On progress

———– 2020 ———–

  • On progress

———– 2019 ———–

  • On progress

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry,2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Magnetofluidics for manipulation of convective heat transfer , International Communicarions in Heat and Mass Transfer, Vol. 89, No. 8, pp. 4387–4391. PDF

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry, 2017, Vol. 9, No. 8, pp. 4387–4391. PDF

Magnetofluidics for manipulation of convective heat transfer , International Communicarions in Heat and Mass Transfer, Vol. 89, No. 8, pp. 4387–4391. PDF

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry, 2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Magnetofluidics for manipulation of convective heat transfer , International Communicarions in Heat and Mass Transfer, Vol. 7, pp. 3461

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry, 2017, Vol. 89, No. 8, pp. 4387–4391.

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry,2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry, 2017 , Vol. 89, No. 8, pp. 4387–4391. PDF

Magnetofluidics for manipulation of convective heat transfer , International Communicarions in Heat and Mass Transfer, Vol. 89, No. 8, pp. 4387–4391. PDF

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry, 2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Magnetofluidics for manipulation of convective heat transfer , International Communicarions in Heat and Mass Transfer, Vol. 89, No. 8, pp. 4387–4391.

Magnetofluidics for manipulation of convective heat transfer , International Communicarions in Heat and Mass Transfer, Vol. 7, pp. 3461

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry,2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry, 2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Magnetofluidics for manipulation of convective heat transfer , International Communicarions in Heat and Mass Transfer, Vol. 7, pp. 3461

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry, 2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry,2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry, 2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry, 2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Magnetofluidics for manipulation of convective heat transfer , International Communicarions in Heat and Mass Transfer, Vol. 7, pp. 3461

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry,2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Negative Pressure Induced Droplet Generation in a Microfluidic Flow-focusing Device , Analytical Chemistry, 2017, Vol. 89, No. 8, pp. 4387–4391. PDF

Magnetofluidics for manipulation of convective heat transfer , International Communicarions in Heat and Mass Transfer, Vol. 7, pp. 3461