Authors:
Goldstein, AS
Amory, JK
Martin, SM
Vernon, C
Matsumoto, A
Yager, P
Citation: As. Goldstein et al., Testosterone delivery using glutamide-based complex high axial ratio nficrostructures, BIO MED CH, 9(11), 2001, pp. 2819-2825
Authors:
Schwienhorst, R
Ciampa, D
Erickson, C
Graham, M
Heller, K
Rusack, R
Sielaff, J
Trammell, J
Wilcox, J
Kodama, K
Ushida, N
Andreopoulos, C
Saoulidou, N
Tzanakos, G
Yager, P
Baller, B
Boehnlein, D
Freeman, W
Lundberg, B
Morfin, J
Rameika, R
Yun, JC
Song, JS
Yoon, CS
Chung, SH
Berghaus, P
Kubantsev, M
Reay, NW
Sidwell, R
Stanton, N
Yoshida, S
Aoki, S
Hara, T
Rhee, JT
Hoshino, K
Jiko, H
Miyanishi, M
Komatsu, M
Nakamura, M
Nakano, T
Niwa, K
Nonaka, N
Okada, K
Sato, O
Akdogan, T
Paolone, V
Rosenfeld, C
Kulik, A
Kafka, T
Oliver, W
Patzak, T
Schneps, J
Citation: R. Schwienhorst et al., A new upper limit for the tau-neutrino magnetic moment, PHYS LETT B, 513(1-2), 2001, pp. 23-29
Authors:
Kodama, K
Ushida, N
Andreopoulos, C
Saoulidou, N
Tzanakos, G
Yager, P
Baller, B
Boehnlein, D
Freeman, W
Lundberg, B
Morfin, J
Rameika, R
Yun, JC
Song, JS
Yoon, CS
Chung, SH
Berghaus, P
Kubantsev, M
Reay, NW
Sidwell, R
Stanton, N
Yoshida, S
Aoki, S
Hara, T
Rhee, JT
Ciampa, D
Erickson, C
Graham, M
Heller, K
Rusack, R
Schwienhorst, R
Sielaff, J
Trammell, J
Wilcox, J
Hoshino, K
Jiko, H
Miyanishi, M
Komatsu, M
Nakamura, M
Nakano, T
Niwa, K
Nonaka, N
Okada, K
Sato, O
Akdogan, T
Paolone, V
Rosenfeld, C
Kulik, A
Kafka, T
Oliver, W
Patzak, T
Schneps, J
Citation: K. Kodama et al., Observation of tau neutrino interactions, PHYS LETT B, 504(3), 2001, pp. 218-224
Citation: Cr. Cabrera et P. Yager, Continuous concentration of bacteria in a microfluidic flow cell using electrokinetic techniques, ELECTROPHOR, 22(2), 2001, pp. 355-362
Citation: As. Goldstein et al., Continuous and highly variable rate controlled release of model drugs fromsphingolipid-based complex high axial ratio microstructures, J CONTR REL, 70(1-2), 2001, pp. 125-138
Citation: As. Goldstein et al., The relationship between the structure of the headgroup of sphingolipids and their ability to form complex high axial ratio microstructures, CHEM PHYS L, 109(1), 2001, pp. 1-14
Citation: Ae. Kamholz et P. Yager, Theoretical analysis of molecular diffusion in pressure-driven laminar flow in microfluidic channels, BIOPHYS J, 80(1), 2001, pp. 155-160
Citation: K. Macounova et al., Concentration and separation of proteins in microfluidic channels on the basis of transverse IEF, ANALYT CHEM, 73(7), 2001, pp. 1627-1633
Citation: Cr. Cabrera et al., Formation of natural pH gradients in a microfluidic device under flow conditions: Model and experimental validation, ANALYT CHEM, 73(3), 2001, pp. 658-666
Authors:
Macounova, K
Cabrera, CR
Holl, MR
Yager, P
Citation: K. Macounova et al., Generation of natural pH gradients in microfluidic channels for use in isoelectric focusing, ANALYT CHEM, 72(16), 2000, pp. 3745-3751
Authors:
Lee, KC
Carlson, PA
Goldstein, AS
Yager, P
Gelb, MH
Citation: Kc. Lee et al., Protection of a decapeptide from proteolytic cleavage by lipidation and self-assembly into high-axial-ratio microstructures: A kinetic and structuralstudy, LANGMUIR, 15(17), 1999, pp. 5500-5508
Authors:
Weigl, BH
Kriebel, J
Mayes, KJ
Bui, T
Yager, P
Citation: Bh. Weigl et al., Whole blood diagnostics in standard gravity and microgravity by use of microfluidic structures (T-sensors), MIKROCH ACT, 131(1-2), 1999, pp. 75-83
Authors:
Kamholz, AE
Weigl, BH
Finlayson, BA
Yager, P
Citation: Ae. Kamholz et al., Quantitative analysis of molecular interaction in a microfluidic channel: The T-sensor, ANALYT CHEM, 71(23), 1999, pp. 5340-5347