390
Views
1
CrossRef citations to date
0
Altmetric
Original Article

High-capacity and security molecular capsule transporters

, &
Pages 235-242 | Received 18 Sep 2013, Accepted 09 Nov 2013, Published online: 07 Jan 2014

Figures & data

Figure 1. Multiwavelength soliton generation system, where Ei: optical fields; Ri: ring radii, Rad: Add-drop ring radius, κi: coupling coefficients.

Figure 1. Multiwavelength soliton generation system, where Ei: optical fields; Ri: ring radii, Rad: Add-drop ring radius, κi: coupling coefficients.

Figure 2. Results of color soliton propagation in the system with wavelength center at 0.9, 1.30, and 1.45 μm, where PANDA through-port signals are Red: through–port signals, Blue: drop port signals.

Figure 2. Results of color soliton propagation in the system with wavelength center at 0.9, 1.30, and 1.45 μm, where PANDA through-port signals are Red: through–port signals, Blue: drop port signals.

Figure 3. Results of color soliton propagation in the system with wavelength center at 0.9, 1.30, and 1.45 μm, where (a) PANDA signals are (b) Add-drop signals, where Red: through port signals, Blue: drop port signals.

Figure 3. Results of color soliton propagation in the system with wavelength center at 0.9, 1.30, and 1.45 μm, where (a) PANDA signals are (b) Add-drop signals, where Red: through port signals, Blue: drop port signals.

Figure 4. Results of color soliton propagation in the system with wavelength center at 0.58 μm, where the normalized power has slightly changed from 0.8 to 0.5 with distance of 16.6 m.

Figure 4. Results of color soliton propagation in the system with wavelength center at 0.58 μm, where the normalized power has slightly changed from 0.8 to 0.5 with distance of 16.6 m.

Figure 5. Color soliton output signals, the center wavelength is 0.58 micron, in which the multicolor solitons (different wavelengths) is obtained by using the proposed system.

Figure 5. Color soliton output signals, the center wavelength is 0.58 micron, in which the multicolor solitons (different wavelengths) is obtained by using the proposed system.

Figure 6. Graphics of optical capsules, where (a) with trapped molecules, (b) the 3D capsules obtained by Opti-wave, Fgrad: Gradient force, Fscatt: Scattering force, WGM: whispering gallery mode.

Figure 6. Graphics of optical capsules, where (a) with trapped molecules, (b) the 3D capsules obtained by Opti-wave, Fgrad: Gradient force, Fscatt: Scattering force, WGM: whispering gallery mode.

Figure 7. Drug delivery networks for long-distance drug delivery targeting security using optical capsules, where (a) tree network, (b) ring and star networks.

Figure 7. Drug delivery networks for long-distance drug delivery targeting security using optical capsules, where (a) tree network, (b) ring and star networks.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.