激光与光电子学进展, 2018, 55 (3): 031301, 网络出版: 2018-09-10   

基于微谐振器的光子晶体光信号分离器 下载: 826次

Photonic Crystal Optical Signal Splitter Based on Micro Resonator
作者单位
聊城大学物理科学与信息工程学院, 山东 聊城 252059
图 & 表

图 1. 光子晶体光信号分离器的结构Ⅰ和结构Ⅱ。(a)具有空气谐振腔的结构Ⅰ;(b)具有介质柱谐振腔的结构Ⅱ

Fig. 1. Structure Ⅰ and structure Ⅱ of photonic crystal optical signal splitter. (a) Structure Ⅰ with an air cavity; (b) structure Ⅱ with a dielectric rod cavity

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图 2. 不同Q3/Q1光信号分离器输入端口正规化反射率

Fig. 2. Normalized reflection of the input port of optical signal splitter with different ratios of Q3/Q1

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图 3. 不同Q3/Q1光信号分离器输出端口P1的正规传输率

Fig. 3. Normalized transmission of the output port P1 of optical signal splitter with different ratios of Q3/Q1

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图 4. 不同Q3/Q1光信号分离器输出端口P2的正规化传输率

Fig. 4. Normalized transmission of the output port P2 of optical signal splitter with different ratios of Q3/Q1

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图 5. 不同Q3/Q1光信号分离器两输出端口的总正规化传输率

Fig. 5. Total normalized transmission of the output ports of optical signal splitter with different ratios of Q3/Q1

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图 6. 不同Q3/Q1光信号分离器的正规化谐振腔损耗率

Fig. 6. Normalized cavity loss of optical signal splitter with different ratios of Q3/Q1

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图 7. 光子晶体光信号分离器结构Ⅰ和结构Ⅱ各自的正规化传输谱。(a)结构Ⅰ微型谐振器柱半径取值不同时两输出端口P1和P2正规化传输谱;(b)结构Ⅱ微型谐振器柱半径取值不同时两输出端口P1和P2正规化传输谱

Fig. 7. Normalized transmission spectra of the photonic crystal optical signal splitter structure Ⅰ and structure Ⅱ. (a) Normalized transmission spectra of the two outputs P1 and P2 for different rod radii of micro resonator in the structure Ⅰ; (b) normalized transmission spectra of the two outputs P1 and P2 for different rod radii of micro resonator in the structure Ⅱ

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图 8. 光子晶体光信号分离器结构Ⅰ和结构Ⅱ各自的正规化传输谱。(a)结构Ⅰ整体介质柱的相对介电常数取值不同时两输出端口P1和P2的正规化传输谱;(b)结构Ⅱ整体介质柱的相对介电常数取值不同时两输出端口P1和P2的正规化传输谱

Fig. 8. Normalized transmission spectra of the photonic crystal optical signal splitter structure Ⅰ and structure Ⅱ. (a) Normalized transmission spectra of the two outputs P1 and P2 for different dielectric constants of the whole rods in the structure Ⅰ; (b)normalized transmission spectra of the two outputs P1 and P2 for different dielectric constants of the whole rods in the structure Ⅱ

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表 1结构Ⅰ和结构Ⅱ微型谐振器柱半径取值不同时两输出端口P1和P2的重要光学参数

Table1. Significant optical parameters of the two outputs P1 and P2 for different rod radii of micro resonators in the structure Ⅰ and structure Ⅱ

Structure ⅠStructure Ⅱ
Line No.ri /nmλ /nmΔλ /nmT /%Line No.ri /nmλ /nmΔλ /nmT /%
10.140a1310.05.094.310.140a1459.76.595.1
20.145a1315.14.793.720.145a1467.66.597.7
30.150a1327.84.290.030.150a1485.56.097.7
40.155a1339.14.086.840.155a1500.75.091.1
50.160a1347.64.083.050.160a1511.43.788.1
60.165a1355.64.081.260.165a1521.03.688.7
70.170a1363.14.086.570.170a1529.33.291.6
80.175a1364.84.181.580.175a1531.23.192.6
90.180a1377.24.284.690.180a1544.02.897.5
100.182a1384.24.286.2100.182a1550.92.898.1
110.190a1391.14.386.9110.190a1557.32.796.8
120.195a1398.04.287.1120.195a1563.52.695.3
130.200a1406.54.286.2130.200a1570.62.592.5
140.205a1422.14.184.8140.205a1582.62.482.2
150.210a1429.44.285.3

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表 2结构Ⅰ和结构Ⅱ整体介质柱的相对介电常数取值不同时两输出端口P1和P2的重要光学参数

Table2. Significant optical parameters of the two outputs P1 and P2 for different dielectric constants of the whole rods in the structureⅠand structureⅡ

StructureⅠStructureⅡ
Line No.εrλ /nmΔλ /nmT /%Line No.εrλ /nmΔλ /nmT /%
19.01342.17.486.719.01450.95.784.9
29.31349.57.088.129.31464.05.183.3
39.61356.56.588.139.61476.64.583.6
49.91363.36.287.849.91488.94.085.7
510.21369.95.887.7510.21501.13.689.5
610.51376.65.587.9610.51513.23.393.5
710.81382.85.188.5710.81524.83.297.0
811.11388.84.988.6811.11536.33.196.6
911.41394.94.688.4911.41548.02.996.8
1011.71400.84.487.41011.71559.22.894.0
1112.01406.54.286.21112.01570.62.592.5
1212.31412.14.085.71212.31581.72.387.2
1312.61417.83.884.81312.61592.42.281.9
1412.91423.13.784.11412.91603.22.176.1
1513.21428.63.584.31513.21613.82.069.2
1613.51433.93.484.01613.51624.52.065.3
1713.81439.03.383.11713.81635.02.061.4
1814.11444.43.283.31814.11645.22.159.3
1914.41449.53.182.91914.41655.62.159.6

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吴立恒, 王明红. 基于微谐振器的光子晶体光信号分离器[J]. 激光与光电子学进展, 2018, 55(3): 031301. Liheng Wu, Minghong Wang. Photonic Crystal Optical Signal Splitter Based on Micro Resonator[J]. Laser & Optoelectronics Progress, 2018, 55(3): 031301.

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