K. Ishikiriyama, New trend in materials research and development, MRSJ News, 31(3), 1 (2019). https://wp.me/abo2xj-160
K.Ishikiriyama, Utilization of Thermal Analysis in Polymer Material Development, Netsu Sokutei, 46 (4), 155-162 (2019). https://wp.me/abo2xj-14e
Yoshitomo Furushima, Masaru Nakada, Kazuhiko Ishikiriyama, Akihiko Toda, Rene Androsch, Evgeny Zhuravlev, Christoph Schick, Two Crystal Populations with Different Melting/Reorganization Kinetics of Isothermally Crystallized Polyamide 6, J. Polymer Sci., Part B, Polymer Phys., 54, 2126-2138 (2016). https://wp.me/abo2xj-157
Yoshitomo Furushima, Masaru Nakada, Hideaki Takahashi, Kazuhiko Ishikiriyama, Study of melting and crystallization behavior of polyacrylonitrile using ultrafast differential scanning calorimetry, Polymer, 55, 3075-3081 (2014). https://wp.me/abo2xj-15m
Yoshitomo Furushima, Kazuhiko Ishikiriyama, Takuji Higashioji, The characteristic length of cooperative rearranging region for uniaxial drawn poly(ethylene terephthalate) films, Polymer, 54(16), 4078-4084 (2013). https://wp.me/abo2xj-15o
Yoshitomo Furushima, Kazuhiko Ishikiriyamaa, Yoshiyuki Ueno, Hiroyuki Sugaya, Analysis of the state of water in polyvinylpyrrolidone aqueous solutions using DSC method, Thermochimica Acta, 538, 43-47 (2012). https://wp.me/abo2xj-154
Ichiro Hatta, Kana Nakanishi b, Kazuhiko Ishikiriyama , Thermal analysis of stratum corneum of hairless mouse with attention to phase transitions near 35 °C, Thermochimica Acta, 431, 94-97 (2005). https://wp.me/abo2xj-15p
M.Todoki and K.Ishikiriyama, Melting Behavior of Nanosize Crysttal Part2 Melting Point of Polymer Crystals, 日本ゴム協会誌, 76(7), 247-254 (2003). https://wp.me/abo2xj-16J
M.Todoki and K.Ishikiriyama, Melting Behavior of Nanosize Crysttal Part1 Thermodynamics Description of Melting Point of Ice,日本ゴム協会誌, 76(7), 240-246 (2003).https://wp.me/abo2xj-16K
A. Boller, I. Okazaki, K. Ishikiriyama, G. Zhang and B. Wunderlich, Determination of Cell Asymmetry in Temperature Modulated DSC, J. Thermal Analysis, 49, 1081-1088 (1997). https://wp.me/abo2xj-16Q
B. Wunderlich, A. Boller, I. Okazaki, and K. Ishikiriyama, Heat Capacity Determination by Temperature-Modulated DSC and its Separation from Transition Effects, Thermochim. Acta, 304/305, 125-136 (1997). https://wp.me/abo2xj-158
K. Ishikiriyama and B. Wunderlich, Cell Asymmetry Correction for Temperature Modulated Differential Scanning Calorimetry, J. Thermal Analysis, 50, 337-346 (1997). https://wp.me/abo2xj-16N
K. Ishikiriyama, A. Boller, and B. Wunderlich, Melting of Indium by Temperature-Modulated Differential Scanning Calorimetry, J. Thermal Analysis, 50, 547-558 (1997). https://wp.me/abo2xj-16P
K. Ishikiriyama and B. Wunderlich, Crystallization and Melting of Poly(oxyethylene) Analyzed by Temperature-Modulated Calorimetry, J. Polymer Sci., Part B, Polymer Phys., 35, 1877-1886 (1997). https://wp.me/abo2xj-15g
K. Ishikiriyama and B. Wunderlich, Melting of Poly(oxyethylene) Analyzed by Temperature-Modulated Calorimetry, Macromolecules, 30, 4126-4131 (1997). https://wp.me/abo2xj-15d
B. Wunderlich, I. Okazaki, K. Ishikiriyama, and A. Boller, Melting by Temperature-Modulated Calorimetry, Proc. 25th NATAS Conf. in McLean, Va., Sept. 7-9, 1997, R. G. Morgan, ed., 49-56.
K. Ishikiriyama, M. Pyda, G. Zhang, T. Forschner, J. Grebowicz, and B. Wunderlich, Heat Capacity of Poly-p-Dioxanone, J. Macromol. Sci. Part B: Physics, 37, 27-44 (1998). https://wp.me/abo2xj-15l
B. Wunderlich, I. Okazaki, K. Ishikiriyama, and A. Boller, Melting by Temperature-Modulated Calorimetry, Thermochim. Acta., 324, 77-85 (1998). https://wp.me/abo2xj-141
B. Wunderlich, A. Boller, I. Okazaki, K. Ishikiriyama, W. Chen, M. Pyda, J. Pak, I. Moon, and R. Androsch, Temperature-Modulated Differential Scanning Calorimetry of Reversible and Irreversible First-Order Transitions, Thermochim. Acta, 330, 21-38 (1999). https://wp.me/abo2xj-15n
K. Ishikiriyama, M. Todoki, K. H. Min, S. Yonemori, and M. Noshiro, THERMOPOROSIMETRY Pore size distribution measurements for microporous glass using differential scanning Calorimetry, J. Thermal Analysis, 46, 1177 (1996). https://wp.me/abo2xj-16O
K. Ishikiriyama and M. Todoki, Heat Capacity of Water in Poly(Methyl Methacrylate Hydrogel Membrane for an Artificial Kidney, J. Polym. Sci. Part B Polymer Phys., 33, 791 (1995). https://wp.me/abo2xj-140
K. Ishikiriyama and M. Todoki, Evaluation of water in silica pores using differential scanning Calorimetry, Thermochimica Acta, 256, 213 (1995). https://wp.me/abo2xj-13Y
K. Ishikiriyama, A. Sakamoto, M. Todoki, T. Tayama, K. Tanaka and T. Kabayashi, Pore size distribution measurements of polymer hydrogel membranes for artificial kidneys using differential scanning calorimetry, Thermochimica Acta, 267, 169 (1995). https://wp.me/abo2xj-15j
K. Ishikiriyama, M. Todoki, T. Kobayashi and H. Tanzawa, Pore Size Distribution Measurements of Poly(methyl methacrylate) Hydrogel Membranes for Artificial Kidneys Using Differential Scanning Calorimetry, J. Colloid Interface Sci., 173, 419 (1995). https://wp.me/abo2xj-15i
K. Ishikiriyama and M. Todoki, Pore Size Distribution (PSD) Measurements of Silica Gels by Means of Differential Scanning Calorimetry II. Thermoporosimetry, J. Colloid Interface Sci., 171, 103 (1995). https://wp.me/abo2xj-15k
K. Ishikiriyama, M. Todoki, and K. Motomura, Pore Size Distribution (PSD) Measurements of Silica Gels by Means of Differential Scanning Calorimetry I. Optimization for Determination of PSD, J. Colloid Interface Sci., 171, 92 (1995). https://wp.me/abo2xj-15h
K.Ishikiriyama,Use of Melting Point Depression of Ice for Determination of Pore Size in Hollow Fiber Membranes for Artificial Kidney, Netsu Sokutei, 18(4), 229-231(1991). https://wp.me/abo2xj-16L
A. Yamada-Nosaka, K. Ishikiriyama, M. Todoki and H. Tanzawa, 1H-NMR Studies on Water on Methacrylate Hydrogels. I, J. Appl. Polym. Sci., 39, 2443 (1990) . https://wp.me/abo2xj-15q