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±è½Â°ü* ÁÖ¹«Á¤**


Å׶óºñÆ®±ÞÀÇ ÆÄÀåºÐÇÒ ´ÙÁßÈ­ ¹æ½ÄÀÇ ±¤Àü¼Û ½Ã½ºÅÛÀ» À§ÇÑ ±¤ÁõÆø ±â¼úÀÇ ÃÖ±Ù µ¿Çâ¿¡ ´ëÇÏ¿© »ìÆ캸¾Ò´Ù. ÃÖ±ÙÀÇ Æø¹ßÀûÀÎ Àü¼Û¿ë·® ¼ö¿äÀÇ Áõ°¡·Î ¸»¹Ì¾Ï¾Æ ¿¡¸£ºç ÷°¡ ±¤¼¶À¯ ÁõÆø±â´Â ÀÌ¹Ì ±× ´ë¿ªÆøÀÇ ÇÑ°è¿¡ µµ´ÞÇÏ°Ô µÇ¾úÀ¸¸ç, 100nm ÀÌ»óÀÇ Ãʱ¤´ë¿ª ±¤ÁõÆøÀ» À§ÇÏ¿© ±¤¼¶À¯ ¶ó¸¸ ÁõÆø±â¿Í °°Àº ºñ¼±Çü ±¤ÁõÆø±âÀÇ µµÀÔÀÌ ºÒ°¡ÇÇÇÏ°Ô µÇ¾ú´Ù. ±×·¯³ª ÇâÈÄ Áö¼ÓÀûÀÎ Àü¼Û ¿ë·®ÀÇ È®´ë¸¦ À§Çؼ­´Â ±¤ÁõÆø±âÀÇ ´ë¿ªÆøÀÇ ÇѰ踦 ±Øº¹Çϱâ À§ÇÏ¿© ä³Î °£°ÝÀ» ÁÙÀÌ°í ä³Î´ç Àü¼Û ¼Óµµ¸¦ Áõ°¡½ÃÅ°´Â ¹æÇâÀÇ ¿¬±¸°¡ ¿ä±¸µÈ´Ù. ¢Æ



I. ¼­ ·Ð


ÆÄÀåºÐÇÒ ´ÙÁßÈ­(WDM) ±¤ Àü¼Û ½Ã½ºÅÛÀÇ ¿ë·®ÀÌ Æø¹ßÀûÀ¸·Î Áõ°¡µÊ¿¡ µû¶ó À̸¦ µÞ¹ÞħÇØ¾ß ÇÒ ±¤ ÁõÆø±âÀÇ ´ë¿ªÆø ¿ª½Ã ³¯·Î Ä¿Áö°í ÀÖ´Ù. ä³Î ´ç 20Gb/s¸¦ ³Ñ´Â ¼ÓµµÀÇ Àü¼Û ±â¼úÀ» È®º¸ÇÏ°í ÀÖ´Â Åë½Å ȸ»çµéÀº ÀÌ¹Ì Ã¤³Î ÀüüÀÇ ¿ë·® 1Tb/s¸¦ ½±°Ô ´É°¡ÇÏ°í ÀÖ´Â ½ÇÁ¤ÀÌ´Ù[1]. ÇöÀç ä³Î ´ç 10Gb/sÀÇ Àü¼Û ¼Óµµ¸¦ È®º¸ÇÏ°í ÀÖ´Â ±¹³»ÀÇ ±â¼ú Çö½Ç¿¡¼­ 1Tb/sÀÇ Àü¼Û ¿ë·®¿¡ µµ´ÞÇϱâ À§Çؼ­´Â WDM ä³ÎÀÇ °³¼ö¸¦ ´ÃÀÌ´Â °ÍÀÌ Çö½ÇÀûÀÎ ¹æ¾ÈÀÌ´Ù. Áï, ¿¹¸¦ µé¾î 100 ä³ÎÀ» ¼ö¿ëÇÒ ¼ö ÀÖ´Â WDM ½Ã½ºÅÛÀÇ °æ¿ì, 10Gb/s¡¿100 ä³ÎÀÌ µÇ¾î 1Tb/sÀÇ Àüü ¿ë·®À» °®°Ô µÇ´Â °ÍÀÌ´Ù. ÀÌ °æ¿ì ÇöÀç ±¹Á¦ Ç¥ÁØÀ¸·Î »ï°í Àִ ä³Î °£°Ý 100GHz¸¦ äÅÃÇÑ´Ù¸é ÇÊ¿äÇÑ ´ë¿ªÆøÀº ¾à 80nm¿¡ À°¹ÚÇÑ´Ù. ½ÇÁ¦·Î Lucent Technologies»ç¿¡¼­´Â C/L-band »çÀÌÀÇ transition band¸¦ 0.5nm·Î ÁÙÀÎ ±¸¼ºÀ» äÅÃÇÏ¿© ½Ç¸®Ä« EDFA¸¸À¸·Î 84.3nmÀÇ ÁõÆø ´ë¿ªÀ» °®´Â ±¤ ÁõÆø±â¸¦ °³¹ßÇÏ¿´°í, À̸¦ »ç¿ëÇÏ¿© 400km Àü¼Û °¡´ÉÇÑ 10Gb/s¡¿100ä³Î(C-band 50GHz °£°Ý 60ä³Î, L-band 100GHz °£°Ý 40ä³Î) WDM ½Ã½ºÅÛÀ» ¹ßÇ¥ÇÏ¿´´Ù[2]. Àüü¸¦ 50GHz °£°ÝÀ¸·Î ÇÒ °æ¿ì ´ë¿ª ÆøÀº 40nm°¡ µÇ¹Ç·Î ä³Î °£ crosstalkÀÌ ¹®Á¦µÇÁö ¾ÊÀ» °æ¿ì ÇöÀç ETRI¿¡¼­ È®º¸ÇÏ°í ÀÖ´Â 64nm ´ë¿ªÆøÀÇ EDFA¸¦ Àû¿ëÇÏ¿© 1Tb/s ±ÞÀÇ WDM ±¤¸µÅ© ÀåÄ¡¸¦ ±¸ÇöÇÏ´Â °ÍÀÌ °¡´ÉÇÏ´Ù. ÀϺ»ÀÇ NTT µî¿¡¼­´Â tellurite-based EDF¸¦ °³¹ßÇÏ¿© C/L-band¸¦ ºÐ¸®ÇÏÁö ¾Ê°í ´ë¿ªÆø È®ÀåÀ» ²ÒÇϱ⵵ ÇÏ¿´´Ù[3].


ä³Î °£°Ý 100GHz¸¦ À¯ÁöÇϸ鼭 Àü¼Û¿ë·®À» 1.28Tb/s·Î È®ÀåÇϱâ À§Çؼ­´Â 100nm ÀÌ»óÀÇ ´ë¿ªÆøÀ» °®´Â ±¤ ÁõÆø±âÀÇ °³¹ßÀÌ ÇÊ¿äÇÏ°Ô µÈ´Ù. ÇöÀç±îÁö ¾Ë·ÁÁø ¹æ¹ýÀ¸·Î 100nm ÀÌ»óÀÇ ´ë¿ªÆøÀ» °®´Â ±¤ ÁõÆø±â¸¦ ±¸ÇöÇϱâ À§Çؼ­´Â ±¤¼¶À¯ ¶ó¸¸ ÁõÆø±â(FRA: Fiber Raman Amplifier)ÀÇ »ç¿ëÀÌ ºÒ°¡ÇÇÇÏ°Ô µÈ´Ù. ±¤¼¶À¯ ¶ó¸¸ ÁõÆø ±â¼úÀº °ú°Å 1970³â´ë ÃÊ¿¡ ¿¬±¸°¡ ½ÃÀ۵Ǿî 1980³â´ë¿¡ À̸£·¯ ±¤Åë½Å¿¡ ÁõÆø±âÀÇ Çʿ伺ÀÌ ´ëµÎµÇ¸é¼­ È°¹ßÇÑ ¿¬±¸°¡ ÁøÇàµÇ¾úÀ¸³ª 1980³â´ë Áß¹Ý ÀÌÈÄ EDFAÀÇ ÃâÇöÀ¸·Î ºûÀ» ÀÒ´Â µí ÇÏ¿´´Ù. °¡Àå Å« ´ÜÁ¡À¸·Î ÁöÀûµÈ °ÍÀº °íÃâ·Â ÆßÇÁ ±¤¿øÀÇ Çʿ伺À̾ú´Ù. ±×·¯³ª 1990³â´ë ÃÊ¹Ý °íÃâ·Â ±¤¼¶À¯ ¶ó¸¸ ·¹ÀÌÀú°¡ µîÀåÇϸ鼭 º¸´Ù ½ÇÁ¦ÀûÀÎ FRA°¡ °¡´ÉÇÏ°Ô µÇ¾ú°í ÀÌ¿¡ ÈûÀÔ¾î ´Ù½Ã±Ý FRA¿¡ ´ëÇÑ °ü½ÉÀÌ Áõ°¡ÇÏ°Ô µÇ¾ú´Ù[4]. °Ô´Ù°¡ WDM ½Ã½ºÅÛÀÇ ¿ë·® Áõ´ë·Î ÀÎÇÏ¿© EDFAÀÇ ÇÑ°è°¡ µå·¯³ª¸é¼­ FRAÀÇ ¿ªÇÒÀÌ º»°ÝÀûÀ¸·Î °¡½ÃÈ­ µÇ¾ú´Ù. FRAÀÇ °¡Àå Å« ÀåÁ¡Àº Àû´çÇÑ ÆßÇÁ ±¤¿ø¸¸ Á¸ÀçÇÒ °æ¿ì Ưº°ÇÑ ±¤¼¶À¯ÀÇ ¼³Ä¡ ¾øÀÌ ±âÁ¸ÀÇ Àü¼Û¿ë ±¤¼¶À¯¸¦ »ç¿ëÇÏ¿© ¾î´À ´ë¿ª¿¡¼­³ª ±¤ ÁõÆøÀÌ °¡´ÉÇÏ´Ù´Â °ÍÀÌ´Ù. ÀÌ·¯ÇÑ Á¡Àº ±¤ ½ÅÈ£¸¦ ±âÁ¸ÀÇ Æ÷¼³µÈ ±¤ ¼±·Î¸¦ µû¶ó ¼Õ½Ç ¾øÀÌ ÁøÇàÇÏ°Ô ÇØÁÖ´Â distributed amplifier¸¦ °¡´ÉÇÏ°Ô ÇÏ¿© EDFA Ãâ·Â¿¡ ¿©À¯ ºÐÀ» Á¦°øÇÔÀ¸·Î½á ±¤ ¸µÅ©ÀÇ ¼³°è¸¦ ¿ëÀÌÇÏ°Ô Çϰųª ÁõÆø±â »çÀÌÀÇ °£°ÝÀ» Å©°Ô ÇÏ¿© ÁõÆø±âÀÇ °³¼ö¸¦ ÁÙÀÓÀ¸·Î½á ±× ºñ¿ëÀ» Àý°¨½Ãų ¼ö ÀÖ°Ô ÇÑ´Ù[5].


º» ±â¼ú µ¿Ç⠺м®¿¡¼­´Â ÇöÀç±îÁö °³¹ßµÇ¾î¿Â ÀÌ·¯ÇÑ Ãʱ¤´ë¿ª ±¤ÁõÆø ±â¼úÀÇ ³»¸éÀ» »ìÆ캽À¸·Î½á ¼¼°èÀû ±â¼ú µ¿ÇâÀ» ÀÌÇØÇÏ°í ¾ÕÀ¸·ÎÀÇ ¹ßÀü ¹æÇâÀ» ¿¹ÃøÇϴµ¥ ¹Ì¾àÇϳª¸¶ µµ¿òÀÌ µÇµµ·Ï ÇÏ¿´´Ù.



II. ½Ç¸®Ä« EDFAÀÇ ÇÑ°è


1980³â´ë Áß¹Ý ÀÌÈÄ º»°ÝÀûÀ¸·Î µîÀåÇÑ ÈñÅä·ù ÷°¡ ½Ç¸®Ä« ±¤¼¶À¯, ƯÈ÷ ¿¡¸£ºç ÷°¡ ±¤¼¶À¯(EDF)´Â 1550nm ´ë¿ªÀÇ ±¤Åë½Å ´ë¿ª°ú ÀÏÄ¡ÇÏ´Â ÀÌµæ ´ë¿ªÆøÀ¸·Î ¸»¹Ì¾Ï¾Æ 1990³â´ëÀÇ ¿¡¸£ºç ÷°¡ ±¤¼¶À¯ ÁõÆø±â(EDFA) ¿¬±¸ °³¹ß ºÕÀ» ÀÏÀ¸Ä×´Ù. ±× »Ó¸¸ ¾Æ´Ï¶ó EDFA¿¡ ÈûÀÔÀº ±¤Åë½Å ºÐ¾ß¿¡¼­´Â WDM ±â¼úÀÇ µµÀÔÀ¸·Î Àü¼Û ¿ë·®ÀÇ È®´ë¿¡ ¹ÚÂ÷¸¦ °¡ÇÏ¿©, ÀÎÅͳÝÀÇ º¸±ÞÀ¸·Î ¸»¹Ì¾Ï¾Æ Àü¼Û ¿ë·®ÀÇ ¼ö¿ä°¡ Æø¹ßÀûÀ¸·Î Áõ°¡ÇÑ 1990³â´ë ¸»¿¡ À̸£·¯¼­´Â ±Þ±â¾ß 1Tb/s¸¦ ³Ñ´Â Àü¼Û ½Ã½ºÅÛÀÌ ÃâÇöÇÏ°Ô µÇ¾ú´Ù. ±×·¯³ª Àü¼Û ½Ã½ºÅÛ ¿ë·®ÀÇ È®ÀåÀº ±×´ë·Î °¡¼Óµµ°¡ ºÙ¾î ±×µ¿¾È ÃæºÐÇÏ´Ù°í ÀνĵǾú´ø EDFAÀÇ ÀÌµæ ´ë¿ªÆøµµ ¿ÀÈ÷·Á ±× ÇѰ踦 ´À³¢°Ô ÇÏ¿´À¸¸ç °á±¹ ±âÁ¸ÀÇ EDFA ´ë¿ª ¿ÜÀÇ »õ·Î¿î ÁõÆø ´ë¿ªÀÇ °³¹ßÀ» ¿ä±¸ÇÏ°Ô µÇ¾ú´Ù. »óȲÀÌ ÀÌ·¸°Ô µÇÀÚ, º»·¡ DSF(Dispersion Shifted Fiber)°¡ º¸±ÞµÈ ÀϺ»¿¡¼­ÀÇ WDM ½Ã½ºÅÛ µµÀÔÀ» À§Çؼ­ °³¹ßµÇ°í ÀÖ¾ú´ø 1580nm ´ë¿ªÀÇ L(long)-band EDFA°¡ »õ·Î¿î °ü½ÉÀ» ºÒ·¯ ÀÏÀ¸Å°°Ô µÇ¾ú´Ù. ¶ÇÇÑ ½Ç¸®Ä« ±¤¼¶À¯¿Í ´Ù¸¥ ±¤¼¶À¯, ¿¹¸¦ µé¾î fluoride ±¤¼¶À¯³ª tellurite ±¤¼¶À¯¿¡ ¿¡¸£ºçÀ» ÷°¡ÇÏ¿© ±âÁ¸ÀÇ ¿¡¸£ºç ÷°¡ ½Ç¸®Ä« ±¤¼¶À¯¿¡¼­ º¸´Ù ³ÐÀº ´ë¿ªÆøÀ» ¾ò°íÀÚ ÇÏ´Â ³ë·Âµéµµ ÁøÇàµÇ°í ÀÖ´Ù.


±×·¯³ª ½Ç¸®Ä« ±¤¼¶À¯ÀÇ ÀÌµæ ´ë¿ªÆø Á¦ÇÑ¿¡ ÀÇÇØ ¹«¾ùº¸´Ùµµ Å©°Ô ÁÖ¸ñÀ» ¹Þ°Ô µÈ °ÍÀº ±¤¼¶À¯ ¶ó¸¸ ÁõÆø±â¶ó°í ÇÒ ¼ö ÀÖ´Ù. »ç½Ç»ó ±¤¼¶À¯ ¶ó¸¸ ÁõÆø±â´Â ¿¡¸£ºç ÷°¡ ±¤¼¶À¯ÀÇ µîÀå°ú ÇÔ²² °ü½ÉÀ» °ÅÀÇ ÀÒ°Ô µÈ »óȲÀ̾úÀ¸³ª »õ·Î¿î ´ë¿ª¿¡ ´ëÇÑ ¼ö¿ä¿Í ÇÔ²² Á¦ 2ÀÇ Àü¼º±â¸¦ ¸ÂÀÌÇÏ°Ô µÈ °ÍÀÌ´Ù.


º»·ÐÀ¸·Î µé¾î°¡±â¿¡ ¾Õ¼­ ÀÏ¹Ý Åë½Å¿ë ±¤¼¶À¯ÀÇ Àú¼Õ½Ç Àü¼Û ÆÄÀå ¿µ¿ª ¹× ¹êµå ±¸ºÐ°ú ÇÔ²² Áö±Ý±îÁö ³í¹®À¸·Î ¼Ò°³µÈ Ãʱ¤´ë¿ª ÁõÆø±â¼úÀÇ ¹ßÀü »óȲÀ» ±×¸²À¸·Î ³ªÅ¸³»º¸¸é (±×¸² 1)°ú °°´Ù.




III. »õ·Î¿î ±¤ÁõÆø ±â¼ú



1. Dual C/L-band EDFA


ÀÌ ¹æ¹ýÀº ±âÁ¸ÀÇ C-band(conventional band) EDFA¿Í 1997³â ÀÌÈÄ »õ·ÎÀÌ °³¹ßµÈ L-band EDFA¸¦ WDM ±¤ °áÇձ⸦ ½á¼­ ÇÕÃÄÁØ °ÍÀÌ´Ù. ÀÌ ¹æ¹ýÀÌ Ã³À½ ¼Ò°³µÈ °ÍÀº NTTÀÇ M. Yamada µî¿¡ ÀÇÇؼ­ ¿´´Ù[6]. º»·¡ L-band EDFA´Â À̺¸´Ù ÈξÀ ¾Õ¼± 1990³â Massicott¿¡ ÀÇÇؼ­ ¼Ò°³µÇ¾úÀ¸³ª[7], ½Ç¿ëÀûÀÎ Ãø¸é¿¡¼­´Â C-band EDFA¿¡¼­ »ç¿ëÇÏ´Â º¸ÅëÀÇ 1480nm pump LD·Î °íÃâ·Â ÁõÆøÀÌ °¡´ÉÇØÁö¸é¼­ºÎÅÍ °ü½ÉÀ» ²ø°Ô µÇ¾ú´Ù[8]. Dual C/L-band EDFA´Â (±×¸² 2)¿Í °°ÀÌ 1.55/1.58§­ WDM ±¤ Ä¿Ç÷¯¸¦ »ç¿ëÇÏ¿© 1,530~1,560nm ÆÄÀå ´ë¿ª°ú 1,570~1,600nm ÆÄÀå ´ë¿ªÀ» °ø°£ÀûÀ¸·Î ±¸ºÐÇÑ ÈÄ °¢°¢ C-band EDFA¿Í L-band EDFA¸¦ ÅëÇÏ¿© ÁõÆø½ÃŲ ´ÙÀ½ ´Ù½Ã 1.55/1.58§­ WDM ±¤ Ä¿Ç÷¯¸¦ »ç¿ëÇÏ¿© µÎ ÆÄÀå ´ë¿ªÀ» ÇϳªÀÇ ±¤¼±·Î·Î ÇÕÄ¡´Â ±¸Á¶·Î µÇ¾î ÀÖ´Ù. Yamada µîÀº C-bandÀÇ °æ¿ì ÀÌµæ µîÈ­ ÇÊÅ͸¦ »ç¿ëÇÏÁö ¾Ê´Â ´ë½Å fluoride-based EDF¸¦ »ç¿ëÇÔÀ¸·Î½á Æòź À̵æÀ» ¾ò¾úÀ¸¸ç, L-bandÀÇ °æ¿ì ¹Ðµµ ¹ÝÀüÀ» ÀÌ¿ëÇÏ¿© Æòź À̵æÀ» ¾ò¾ú´Ù. ÀÌ·¸°Ô ÇÔÀ¸·Î½á ¾òÀº ´ë¿ªÆøÀº À̵æ ÆíÂ÷ 1.7dB À̳»¿¡¼­ C-band 30nm, L-band 24nm¿´´Ù(±×¸² 3). ÀâÀ½ Áö¼ö´Â ¼Ò½ÅÈ£ ÀÔ·Â ¹üÀ§¿¡ ´ëÇÏ¿© C-band¿¡¼­ 6dB ÀÌÇÏ, L-band¿¡¼­ 7dB ÀÌÇÏ·Î ÃøÁ¤µÇ¾ú´Ù. L-band ´ë¿ª¿¡¼­ ´ë¿ªÆøÀÌ »ó´ëÀûÀ¸·Î Á¼°Ô µÈ °ÍÀº »ç¿ëÇÑ 1.55/1.58§­ WDM ±¤ Ä¿Ç÷¯ÀÇ »ðÀÔ¼Õ½Ç Æ¯¼º ¶§¹®À̾ú´Ù.




ÇÑÆí Lucent TechnologiesÀÇ Sun µîÀº ÀÌ·¯ÇÑ ¹®Á¦Á¡À» ±Øº¹Çϱâ À§ÇØ C-band¿Í L-band»çÀÌÀÇ transition band¸¦ ÃÖ¼ÒÈ­ÇÏ´Â ¹æ¹ýÀ¸·Î ±¤¼øȯ±â¿Í chirped FBG(Fiber Bragg Grating)À» »ç¿ëÇÏ¿´´Ù[9](±×¸² 4). Chirped FBGÀÇ ¹Ý»ç Æ÷Æ®·Î »ç¿ëÇÑ C-band¿Í Åõ°ú Æ÷Æ®·Î »ç¿ëÇÑ L-band »çÀÌÀÇ transition band´Â ÀÌ °æ¿ì 0.5nm·Î ÁÙÀÏ ¼ö ÀÖ¾úÀ¸¸ç, LPG(Long Period Grating)À» ½á¼­ À̵æ Æòźȭ ½ÃŲ °á°ú À̵æ ÆíÂ÷ 3dB À̳»¿¡¼­ C-band 40.8nm, L-band 43.5nm¸¦ ¾ò¾ú´Ù[10](±×¸² 5). ÀâÀ½Áö¼ö ¶ÇÇÑ 6dB ÀÌÇÏ·Î ¶Ù¾î³­ ¼º´ÉÀ» °¡Á³´Ù. LucentÀÇ Srivastava µîÀº °ð¹Ù·Î ÀÌ ÁõÆø±â¸¦ »ç¿ëÇÏ¿© 10Gb/s, 100°³ÀÇ WDM ½ÅÈ£¸¦ NZ-DSF 400km¸¦ ÅëÇÏ¿© Àü¼ÛÇϴµ¥ ¼º°øÇϱ⵵ ÇÏ¿´´Ù[2].




ÇöÀç ETRI¿¡¼­ °³¹ß ÁßÀÎ 10Gb/s¡¿64ä³Î WDM ½Ã½ºÅÛÀÇ ±¤ ÁõÆø±âÀÇ °æ¿ì¿¡µµ ÀÌ¿Í °°ÀÌ C/L-band ÆòÇà ±¸Á¶¸¦ äÅÃÇÏ°í ÀÖÀ¸¸ç, ¹Ì¼¼ ±¤¼ÒÀÚ ÇüÅÂÀÇ C/L-band WDM °áÇձ⸦ »ç¿ë, 4~5nmÀÇ transition band¸¦ Çã¿ëÇÏ¿© Àüü 64nmÀÇ ÀÌµæ ´ë¿ªÆøÀ» È®º¸ÇÏ°í ÀÖ´Â ½ÇÁ¤ÀÌ´Ù. ÀÌ¿Í °°Àº ±¸Á¶ÀÇ EDFA´Â ÀÌ¹Ì º¸ÆíÈ­µÇ¾î ÀÖ´Â ÇüÆíÀ̸ç À̸¦ »ç¿ëÇÏ¿© ¸¹Àº WDM Àü¼Û ½ÇÇèÀÌ ¼öÇàµÇ°í ÀÖ°í, ÀÌ¹Ì »ó¿ë ½Ã½ºÅÛµµ ¼±º¸ÀÌ°í ÀÖ´Ù[11~14].




2. Tellurite-based EDFA


Silica-based EDF³ª fluoride-based EDF¿¡¼­ º¸´Ù ´õ ³ÐÀº ´ë¿ªÆøÀ» ¾ò°íÀÚ ÇÏ´Â ³ë·ÂÀ¸·Î tellurite-based EDF¿¡ ´ëÇÑ ¿¬±¸°¡ 1996³â ÀÌÈÄ·Î ÀϺ»À» Áß½ÉÀ¸·Î È°¹ßÇØÁö±â ½ÃÀÛÇÏ¿´´Ù. ÀϹÝÀûÀ¸·Î ÈñÅä·ù ÀÌ¿ÂÀÇ Àü±â ½Ö±ØÀÚ ÀüÀÌ¿¡ ÀÇÇÑ stimulated emission cross section(¥ò)Àº À¯¸®ÀÇ ±¼Àý·ü (n)°ú ´ÙÀ½°ú °°Àº °ü°è½ÄÀÌ ¼º¸³ÇÑ´Ù[15].


 (1)


µû¶ó¼­ È£½ºÆ® ¹°ÁúÀÇ ±¼Àý·üÀÌ ³ôÀ¸¸é ¥òµµ Ä¿Áö°Ô µÇ¾î »ó´ëÀûÀ¸·Î ³·Àº ±¼Àý·üÀ» °®´Â È£½ºÆ®¿¡¼­º¸´Ù ´õ ³ÐÀº ÀÌµæ ´ë¿ªÀ» ¾òÀ» ¼ö ÀÖ´Â °¡´É¼ºÀÌ ÀÖ°Ô µÈ´Ù. ±¼Àý·üÀÌ 2°¡ ³Ñ´Â Tellurite À¯¸®°¡ °ü½ÉÀ» ²ø°Ô µÈ °ÍÀº ¹Ù·Î ÀÌ·¯ÇÑ ÀÌÀ¯ ¶§¹®ÀÌ´Ù. AlÀÌ Ã·°¡µÈ ½Ç¸®Ä« ±¤¼¶À¯, fluoride ±¤¼¶À¯, ±×¸®°í tellurite ±¤¼¶À¯¿¡¼­ÀÇ ¿¡¸£ºç ÀÌ¿ÂÀÇ emission cross sectionÀº (±×¸² 6)°ú °°´Ù.



ÀÌ·¯ÇÑ tellurite ±¤¼¶À¯¸¦ ÀÌ¿ëÇÏ¿© óÀ½À¸·Î WDM¿ë ±¤´ë¿ª ÁõÆø±â°¡ ¼Ò°³µÈ °ÍÀº OFC¡¯97¿¡¼­ NTT ¿¬±¸ ±×·ì¿¡ ÀÇÇؼ­ ¿´´Ù[17]. MoriµîÀº ÀÌ ³í¹®¿¡¼­ ¼Ò½ÅÈ£ À̵æ 20dB¸¦ ³Ñ´Â ´ë¿ªÆøÀÌ 80nm¿¡ À°¹ÚÇÔÀ» º¸¿´À¸¸ç ´ÜÁö ÀÔ·Â ½ÅÈ£ÀÇ Áõ°¡¿¡ ÀÇÇÑ À̵æÀÇ Æ÷È­ Çö»ó¿¡ ÀÇÇØ À̵æ ÆíÂ÷ 1.5dB ÀÌÇÏÀÇ Æòź ÀÌµæ ´ë¿ªÆø 75nm¸¦ 1,535~1,610nm »çÀÌ¿¡¼­ ¾òÀ» ¼ö ÀÖÀ½À» º¸¿´´Ù. ÀâÀ½ Áö¼ö´Â 1,580nm¿¡¼­ ÃÖ¼Ò°ª 6dB¸¦ °¡Á³À¸¸ç ÀüüÀûÀ¸·Î 7~8dB À̳»ÀÇ ¾çÈ£ÇÑ °ªÀ» °¡Á³´Ù. °°Àº ±×·ìÀÇ Yamada µîÀº ¿©±â¿¡ ³×°¡Áö ¼­·Î ´Ù¸¥ FSRÀ» °®´Â Mach-Zehnder ÇÊÅ͸¦ À̵æ Æòźȭ ÇÊÅÍ·Î »ç¿ëÇÏ¿© 3dB ¼±Æø 76nm (1,532~1,608nm)ÀÇ tellurite-based EDFA¸¦ ¹ßÇ¥ÇÏ¿´´Ù[3](±×¸² 7). À̵æ Æòźȭ ½ÃŲ ÈÄÀÇ ¼Ò½ÅÈ£ À̵æÀº ¾à 21dB ¿´À¸¸ç ÀâÀ½ Áö¼ö´Â 4.8~7.0dB ¼öÁØÀ¸·Î ³·¾Ò´Ù. ÀÌ·¯ÇÑ Àú ÀâÀ½ÀÇ ÁõÆø±â°¡ °¡´ÉÇÏ°Ô µÈ °ÍÀº ³·Àº ¹è°æ ¼Õ½ÇÀ» °¡Áö´Â tellurite-based EDF¸¦ Á¦ÀÛÇÑ µ¥´Ù°¡, Àú ÀâÀ½ silica EDFA¿¡¼­¿Í °°ÀÌ 1´Ü¿¡ 1,480nm ¼ø¹æÇâ ÆßÇεǴ ªÀº ±æÀÌ(4m)ÀÇ EDFA¸¦ ¼³Ä¡ÇÏ°í ±× µÚ¿¡ ±¤ºÐ¸®±â¸¦ ¼³Ä¡ÇÑ ÈÄ ºñ±³Àû ±ä ±æÀÌ(10m)ÀÇ 1,480nm ¿ª¹æÇâ ÆßÇεǴ 2´Ü EDFA¸¦ ¼³Ä¡ÇÏ¿´±â ¶§¹®ÀÌ´Ù. Yamada µîÀº ¿©±â¿¡ 1,450nm ´ë¿ª¿¡¼­ 37nmÀÇ ÀÌµæ ´ë¿ªÆøÀ» °®´Â fluoride °è¿­ÀÇ Tm3+-doped ±¤¼¶À¯ ÁõÆø±â¸¦ tellurite-based EDF¿Í ÆòÇàÇÏ°Ô ¿¬°áÇÏ¿© ÃÖ´ë 113nmÀÇ ´ë¿ªÆøÀ» °®´Â ÁõÆø±â¸¦ ¹ßÇ¥ÇÏ¿´´Ù[3]. ¶ÇÇÑ 1,480nm ÆßÇÁ LD·Î ¾ç¹æÇâ ÆßÇÎÇÑ tellurite-based EDF ¾Õ´Ü¿¡ 980nm ÆßÇÁ LD·Î ¼ø¹æÇâ ÆßÇÎÇÑ silica-EDF¸¦ ±¤ºÐ¸®±â¿Í ÇÔ²² ¿¬°áÇÑ º¹ÇÕ ÁõÆø±â ±¸Á¶¸¦ ÅëÇØ 5dB ÀÌÇÏÀÇ Àú ÀâÀ½Áö¼ö¸¦ °®´Â ÁõÆø±â¸¦ ¼±º¸À̱⵵ ÇÏ¿´´Ù[18]. ÀÌ ¶§ ÀÌµæ ´ë¿ªÆøÀº ¿ª½Ã Mach-Zehnder ÇÊÅ͸¦ »ç¿ëÇÏ¿© À̵æ Æòźȭ ½ÃŲ ÈÄ 68nm(1,540~1,608nm)¿´´Ù. ÇÑÆí, KDDÀÇ Nakai µîÀº 980nm¸¦ ÆßÇÎ ÆÄÀåÀ¸·Î »ç¿ëÇÏ¿© °í À̵æ, Àú ÀâÀ½À» °®´Â tellurite-based EDFA¸¦ ½ÃµµÇÏ¿´À¸¸ç, tellurite-based EDFÀÇ Àç·áÀû °üÁ¡¿¡¼­ÀÇ ±âÃÊ ½ÇÇèÀ» ÅëÇÏ¿© ÇâÈÄ ¹ßÀü °¡´É¼ºÀ» Á¦½ÃÇϱ⵵ ÇÏ¿´´Ù[19]. ¶ÇÇÑ º¸´Ù ÃÖ±ÙÀÇ WDM ÀÀ¿ë¸é¿¡¼­´Â Mori µîÀÌ 1480nm¿¡¼­ ¾ç¹æÇâ ÆßÇνÃŲ L-band ´ë¿ª¿¡¼­ÀÇ tellurite-based EDFAÀÇ ¼º´ÉÀ» ½Ç¸®Ä« EDFA¿Í ºñ±³ÇÏ¿´´Âµ¥, PCE(power conversion efficiency)¸é¿¡¼­´Â ºñ½ÁÇϳª ´ë¿ªÆø ¸é¿¡¼­ tellurite-based EDFA ÂÊÀÌ 12nm Á¤µµ ´õ ³Ð¾î, ÆòÇ౸Á¶ÀÇ dual band EDFA¿¡¼­µµ tellurite-based EDFA°¡ ÀåÁ¡À» °¡ÁüÀ» º¸¿´´Ù. FBG¸¦ ÀÌ¿ëÇÑ À̵æ Æòźȭ ÇÊÅÍ »ç¿ë ÈÄ ÀÌµæ ´ë¿ªÆø 50nm(1,560~1,610nm), À̵æ 25.3dB, ÀâÀ½Áö¼ö 6dB ÀÌÇÏ, À̵æÆòźµµ 0.6dB, ÃÖ´ëÃâ·Â 20.5dBm(PCE=32.8%)À» ¾ò¾ú´Ù[20].



ÇöÀç tellurite-based EDF´Â »ó¿ëÈ­µÇ¾î ÆǸŵǰí ÀÖ±â´Â ÇÏÁö¸¸, ½Ç¸®Ä« EDF¿¡ ºñÇÏ¿© 10¹è ÀÌ»ó °í°¡À̸ç, ÄÚ¾îÀÇ ±¼Àý·üÀÌ ³ô¾Æ ÀÏ¹Ý Åë½Å¿ë ±¤¼¶À¯¿ÍÀÇ Àú¼Õ½Ç, Àú ¹Ý»çÀ² Á¢¼ÓÀ» À§ÇØ NA°¡ Å« ±¤¼¶À¯¸¦ ¹öÆÛ·Î »ç¿ëÇÏ°í TEC(Thermally-diffused Expanded Core) ¹æ¹ý, tilted V-groove connection ¹æ¹ý µîÀ» »ç¿ëÇÏ¿©¾ß ÇÏ´Â ´ÜÁ¡ÀÌ ÀÖ´Ù[18, 21]. µû¶ó¼­ ÇöÀç·Î¼­´Â ±âÃÊ ¿¬±¸ ´Ü°è ¼öÁØÀ̶ó°í º¼ ¼ö ÀÖÀ¸¸ç, ¾Æ½±°Ôµµ 3~4Àý¿¡ ¾ð±ÞÇÒ ±¤¼¶À¯ ¶ó¸¸ ÁõÆø±â¿¡ ºñÇÏ¿© Å« ÁÖ¸ñÀ» ¹Þ°í ÀÖÁö´Â ¸øÇÑ ÇüÆíÀÌ´Ù. Âü°í·Î ¿ÃÇØ °³ÃÖµÈ OFC2000 ÇÐȸ¿¡¼­´Â tellurite-based EDFA¿¡ ´ëÇÑ ³í¹®ÀÌ ¹ßÇ¥µÇÁö ¾Ê¾Ò´Ù.




3. Praseodymium-DFA¿Í Thulium-DFA


¿¡¸£ºç ¿ÜÀÇ ´Ù¸¥ ÈñÅä·ù ÀÌ¿ÂÀ» ±¤¼¶À¯¿¡ ÷°¡ÇÔÀ¸·Î½á 1.5§­ ÀÌ¿ÜÀÇ ´Ù¸¥ ´ë¿ª¿¡¼­ÀÇ ÁõÆø±â °³¹ß ¿¬±¸µµ ÁøÇàµÇ°í ÀÖ´Â °¡¿îµ¥, ÇöÀç °¡Àå À¯·Â½Ã µÇ°í ÀÖ´Â µÎ°¡Áö ¹°ÁúÀÌ Pr (praseodymium)°ú Tm(thulium)ÀÌ´Ù. (±×¸² 8)Àº 1.3~1.7§­ ´ë¿ª¿¡¼­ À̵é ÈñÅä·ù ÷°¡ ±¤¼¶À¯ ÁõÆø±â¿¡¼­ÀÇ ¼Ò½ÅÈ£ À̵æÀ» ºñ±³ÇÑ °ÍÀε¥, ±×¸²¿¡¼­ ¾Ë ¼ö ÀÖ´Â ¹Ù¿Í °°ÀÌ PDFA(Pr-doped fiber amplifier)´Â ÁÖ·Î 1.3§­, TDFA(Tm-doped fiber amplifier)´Â 1.46§­¿Í 1.65§­ ´ë¿ªÀÇ ±¤½ÅÈ£¸¦ ÁõÆø½Ãų ¼ö ÀÖ´Ù.



Àß ¾Ë·ÁÁø ¹Ù¿Í °°ÀÌ WDM ½Ã½ºÅÛ ±â¼úÀÌ ¿À´Ã³¯°ú °°ÀÌ Çö½ÇÈ­µÇ±â ÀÌÀü¿¡ ÀÌ¹Ì ÀÏ¹Ý Åë½Å¿ë ±¤¼¶À¯ÀÇ ¿µºÐ»ê ¿µ¿ªÀÎ 1.3§­ ´ë¿ªÀÌ Áö»ó ±¤Åë½Å¸Á¿¡ º¸ÆíÈ­ µÇ¾ú´Ù. ±×·¯³ª Àû´çÇÑ ÁõÆø±âÀÇ ºÎÀç·Î ¸»¹Ì¾Ï¾Æ, EDFA¿¡ ÈûÀÔÀº 1.5§­ ´ë¿ªÀÇ ºü¸¥ ¼ºÀå¿¡ ±×µ¿¾È µÚÃÄÁö°í ¸»¾Ò´Ù. ±×·¯³ª ¼­·Ð¿¡¼­µµ ¾ð±ÞÇÑ ¹Ù¿Í °°ÀÌ EDFA°¡ ´ã´çÇÏÁö ¸øÇÏ´Â Åë½Å ´ë¿ªÀÇ °ü½ÉÀÌ »õ·Ó°Ô ºÎ°¢µÊ¿¡ µû¶ó 1.3§­ ´ë¿ªÀÇ ÁõÆø±â °³¹ß ¿ª½Ã ´Ù½Ã±Ý °ü½ÉÀ» ²ø°Ô µÇ¾ú´Ù. 1.3§­ ´ë¿ªÀÇ ÁõÆø±â·Î¼­ °¡Àå À¯·Â½Ã µÇ´Â Èĺ¸ÀÎ PDFA´Â 1990³â´ë ÃʺÎÅÍ ÀϺ»ÀÇ NTT¿¡¼­ ¿¬±¸µÇ¾ú´Ù. PrÀÇ ¿¡³ÊÁö ÁØÀ§´Â (±×¸² 9)¿Í °°À¸¸ç, ¿©±â¼­ 1.3§­ ´ë¿ªÀÇ ÁõÆø¿¡ °ü¿©ÇÏ´Â ÀüÀÚ ÃµÀÌ´Â 1G4 ¡æ 3H5ÀÌ´Ù. ±×·±µ¥ ±×¸²¿¡¼­µµ ¾Ë ¼ö ÀÖ´Â ¹Ù¿Í °°ÀÌ À­ÁØÀ§ÀÇ ÀüÀÚµéÀº multiphonon relaxation °úÁ¤À» ÅëÇØ 3F4 ÁØÀ§·Î õÀÌÇϱ⠶§¹®¿¡ È¿À²ÀûÀÎ ±¤ÁõÆøÀÌ ¾î·Æ´Ù´Â ¹®Á¦Á¡À» °¡Áö°í ÀÖ´Ù. µû¶ó¼­ ÁÖ °ü½É»ç´Â ±¤¼¶À¯ÀÇ È£½ºÆ® ¹°Áú·Î¼­ phonon ¿¡³ÊÁö°¡ ³·Àº °ÍÀ» »ç¿ëÇÏ´Â °ÍÀ̾ú´Ù. ±× °á°ú ½Ç¸®Ä« ±¤¼¶À¯ º¸´Ù´Â fluoride °è¿­ÀÇ ±¤¼¶À¯¸¦ »ç¿ëÇÏ¿©¾ß Çϸç, ÇöÀç °¡Àå ÀûÇÕÇÑ °ÍÀº InF3-based fluoride ±¤¼¶À¯ÀÎ °ÍÀ¸·Î ¾Ë·ÁÁ® ÀÖ´Ù[22, 23]. ÆßÇο¡´Â (±×¸² 9)¿¡¼­ º¸µíÀÌ ÆÄÀå 1.02§­ ºÎ±ÙÀÇ ·¹ÀÌÀú°¡ ÇÊ¿äÇϹǷΠ±×µ¿¾ÈÀº Nd:YLF ·¹ÀÌÀú³ª MOPA ±¸Á¶ÀÇ °íÃâ·Â ·¹ÀÌÀú¸¦ »ç¿ëÇÏ¿´´Ù. µû¶ó¼­ ½Ã½ºÅÛ ÀÀ¿ë½Ã ¸ðµâÀÇ Å©±â°¡ ¹®Á¦°¡ µÇ¾ú´Ù. ÀÌ ¹®Á¦Á¡ ¿ª½Ã °°Àº ±×·ìÀÇ Sugo, Tommyo µî¿¡ ÀÇÇÏ¿© ÀÌ ÆÄÀå ´ë¿ª¿¡¼­ µ¿ÀÛÇÏ´Â °íÃâ·Â LD°¡ °³¹ßµÇ¸é¼­ ÇØ°áµÇ¾ú´Ù[24, 25]. PDFAÀÇ ÀüÇüÀûÀÎ ÀÌµæ ¹× ÀâÀ½Áö¼ö Ư¼ºÀº (±×¸² 10)°ú °°´Ù. ¼Ò½ÅÈ£ À̵æÀÇ °æ¿ì, ÁõÆø ´ë¿ªÆøÀº 3dB ±âÁØÀ¸·Î ¾à 26nm(1,290~1,316nm) À̸ç À̵æ Æ÷È­°¡ ÀϾ¸é¼­ ´ë¿ªÆøÀÌ Áõ°¡ÇÏ¿© ?3dBm ÀÔ·ÂÀÏ ¶§ ¾à 33nm ÀÓÀ» º¼ ¼ö ÀÖ´Ù. ÀâÀ½Áö¼ö°¡ ÆÄÀå¿¡ µû¶ó Áõ°¡ÇÏ´Â °ÍÀº PDFÀÇ ground sate absorption ¶§¹®ÀÎ °ÍÀ¸·Î ¾Ë·ÁÁ® ÀÖ´Ù. PDF¿¡ °üÇÑ °¡Àå ÃÖ±ÙÀÇ °á°ú´Â ÇÁ¶û½ºÀÇ ´Ï½º¿¡¼­ ÀÖ¾ú´ø ECOC¡¯99¿¡¼­ Mori µî¿¡ ÀÇÇØ ¹ßÇ¥µÇ¾ú´Âµ¥, FBG ÇüÅÂÀÇ À̵æ Æòźȭ ÇÊÅ͸¦ »ç¿ëÇÏ¿© 20nm(1,290~1,310nm)ÀÇ ÁõÆø ´ë¿ªÆøÀ» ¾ò¾úÀ¸¸ç, ¼Ò½ÅÈ£ À̵æ 28dB, ÀâÀ½Áö¼ö 7.5dB ÀÌÇÏ, À̵æ ÆíÂ÷ 1dB ÀÌÇÏÀÇ °ªÀ» ¾ò¾ú´Ù[22].




ÇÑÆí, TDFA´Â 1.46§­ ´ë¿ªÀÇ S+-bandÀÇ ÁõÆø±â·Î¼­ °³¹ßµÇ¾î ¿ÔÀ¸¸ç ÀÌ ¶ÇÇÑ ½Ç¸®Ä« ±¤¼¶À¯¿¡¼­º¸´Ù´Â fluoride °è¿­ÀÇ ±¤¼¶À¯¿¡¼­ È¿°úÀûÀÎ °ÍÀ¸·Î ¾Ë·ÁÁ® ÀÖ´Ù. Tm ÀÌ¿ÂÀÇ ¿¡³ÊÁö ÁØÀ§´Â (±×¸² 11)°ú °°´Ù. ¿©±â¼­ÀÇ ¹®Á¦Á¡Àº ÁõÆø ´ë¿ª õÀÌÀÇ À§ ÁØÀ§ÀÎ 3H4 ÁØÀ§ÀÇ lifetimeÀÌ 1.7ms Á¤µµ·Î, ¾Æ·¡ ÁØÀ§ÀÎ 3F4 ÁØÀ§ÀÇ lifetime 11ms º¸´Ù ª¾Æ ¹Ðµµ ¹ÝÀüÀÌ ÀÌ·ç¾îÁö±â ¾î·Æ´Ù´Â »ç½ÇÀÌ´Ù[29]. µû¶ó¼­ ¾Æ·¡ ÁØÀ§ÀÇ ÀüÀÚµéÀ» È¿°úÀûÀ¸·Î ¾ø¾Ù ¼ö ÀÖ´Â ¹æ¹ýÀÌ ¿ä±¸µÈ´Ù. ¶Ç´Ù¸¥ ¹®Á¦Á¡Àº ÆßÇÎ ´ë¿ªÀÎ 3H4¿Í 3H6 »çÀÌÀÇ ÃµÀÌ¿¡ ÀÇÇÑ 0.8§­ ´ë¿ªÀÇ ASE (Amplified Spontaneous Emission)°¡ È¿À²À» °¨¼â ½ÃŲ´Ù´Â »ç½ÇÀÌ´Ù[29]. ÀÌ °¡¿îµ¥ ù¹ø° ¹®Á¦Á¡Àº ±¤¼¶À¯¿¡ ´Ù¸¥ ÀÌ¿ÂÀ» ÷°¡ ½ÃÄÑ °¢ ¿¡³ÊÁö ÁØÀ§ÀÇ lifetimeÀ» º¯È­½ÃÄÑ Áְųª (±×¸² 11)°ú °°ÀÌ 1.04~1.06§­ ÆÄÀå ´ë¿ªÀÇ upconversion ÆßÇÎ(¶Ç´Â 2-stage ÆßÇÎ)À¸·Î ÇØ°áÇÒ ¼ö ÀÖ´Ù[29]. ÀÌ °¡¿îµ¥ upconversion ÆßÇÎ ¹æ¹ýÀ» »ç¿ëÇÑ °æ¿ì°¡ 0.8§­ ´ë¿ªÀÇ ASE¸¦ ÀÛ°Ô À¯Áö½Ãų ¼ö ÀÖ¾î PCE ¸é¿¡¼­ º¸´Ù È¿À²ÀûÀÎ °ÍÀ¸·Î °á·Ð Áö¾îÁ³´Ù[29]. Sakamoto µîÀº ÀÌ·¯ÇÑ upconversion ÆßÇÎ ¹æ¹ýÀ» Àû¿ëÇÏ¿©, LD·Î ÆßÇÎÇÑ Nd:YLF ·¹ÀÌÀú¸¦ ÆßÇÎ ±¤¿øÀ¸·Î »ç¿ëÇÑ ZBLAN ±¤¼¶À¯ TDFA¸¦ ¼±º¸¿´´Ù[28]. FBG ÇüÅÂÀÇ À̵æ Æòźȭ ÇÊÅ͸¦ Áß°£¿¡ »ðÀÔÇÏ´Â ÇüÅÂÀÇ 2´Ü ÁõÆø±¸Á¶¿¡¼­ (±×¸² 12)¿Í °°ÀÌ Æòź ÀÌµæ ´ë¿ªÆø 34nm(1,451~1,485nm)¸¦ ¾ò¾úÀ¸¸ç, -13dBmÀÇ ÀÔ·Â ½ÅÈ£ ¼¼±â¿¡¼­ Æòź À̵æ 22dB, À̵æ Æòźµµ 1dB ÀÌÇÏ, ±×¸®°í ÀâÀ½Áö¼ö 6dB ÀÌÇÏÀÇ ¼º´ÉÀ» ¾òÀ» ¼ö ÀÖ¾ú´Ù.



ÇÑÆí, ÇÁ¶û½º AlcatelÀÇ Roy µîÀº 1,064nm ¾ç¹æÇâ ÆßÇÎÀ» ÅëÇØ È¿À²À» 5dB Á¤µµ Áõ°¡½Ãų ¼ö ÀÖÀ¸¸ç, 1,117nm¿ÍÀÇ º¹ÇÕ ÆßÇÎÀ» ÅëÇØ ´ë¿ªÆøÀ» 5nm Á¤µµ ³ÐÈ÷°í ¶ÇÇÑ À̵æ Á᫐ ÆÄÀåÀ» 16nm Á¤µµ À̵¿½Ãų ¼ö ÀÖÀ½À» º¸°íÇÏ¿´´Ù[30].


NTTÀÇ Yamada µîÀº ÀÌ·¯ÇÑ 1,460nm ´ë¿ªÀÇ TDFA¸¦ tellurite-based EDFA¿Í ÆòÇà ±¸Á¶·Î ¿¬°áÇÏ¿© 3dB ´ë¿ªÆøÀÌ ¹«·Á 113nm¿¡ À̸£´Â Ãʱ¤´ë¿ª ÁõÆø±â¸¦ ¹ßÇ¥Çϱ⵵ ÇÏ¿´´Ù[3]. À̶§ TDFAÀÇ ¼±ÆøÀº 37nm(1,446~1,483nm), tellurite-based EDFA´Â 76nm(1,532~ 1,608nm)¿´À¸¸ç, ¼Ò½ÅÈ£ À̵æ 20dB¿¡ ÀâÀ½Áö¼ö 7.5dB ÀÌÇϸ¦ ¾ò¾ú´Ù. ¶ÇÇÑ Kani µîÀº TDFA, C-band EDFA, ±×¸®°í L-band EDFA, ¼¼ ¹êµå¸¦ Çϳª·Î ¹­¾î ÀÌµé ¼¼ ¿µ¿ªÀÇ WDM ½ÅÈ£°¡ Àü¼ÛµÉ ¶§ ÀϾ´Â interband ºñ¼±Çü Çö»óÀ» ºÐ¼®Çϱ⵵ ÇÏ¿´´Ù[31].



TDFA´Â ¾Õ¼­ ¾ð±ÞÇÑ °Íó·³ 1,460nm ´ë¿ªÀÇ ÁõÆø »Ó¸¸ ¾Æ´Ï¶ó 1,650nm ´ë¿ªÀÇ ½ÅÈ£ ¶ÇÇÑ ÁõÆø ½Ãų ¼ö ÀÖ´Ù. ÀÌ °æ¿ì¿¡´Â 1.2§­ ´ë¿ª(3H6 ¡æ 3H5)ÀÇ ÆßÇÎÀ» ÅëÇØ 1.6~2.0§­ ´ë¿ª(3F4 ¡æ 3H6)¿¡¼­ À̵æÀÌ »ý±â°Ô µÈ´Ù. ÀÌ ´ë¿ª ¿ª½Ã ASEÀÇ Áõ°¡·Î ¸»¹Ì¾Ï¾Æ È¿À²ÀûÀÎ ÁõÆøÀ» ¾ò±â À§Çؼ­´Â Tb(terbium)°ú °°Àº ÀÌ¿ÂÀ» ÷°¡ÇØ ÁÖ¾î¾ß ÇÑ´Ù[29].




4. Fiber Raman Amplifier


±¤¼¶À¯ ¶ó¸¸ ÁõÆø±â(FRA, fiber Raman amplifier)´Â ½Ç¸®Ä« ±¤¼¶À¯ÀÇ °æ¿ì ÆßÇÎ ±¤¿øÀÇ ÆÄÀå¿¡ ´ëÇÏ¿© 13.5THzÀÇ À̵¿µÈ ÁÖÆļö À§Ä¡¿¡¼­ 40THz¿¡ À̸£´Â ¸Å¿ì ³ÐÀº ¹üÀ§¿¡¼­ À̵æÀ» °®°Ô µÈ´Ù. 1,550nm¿¡¼­ 3dB ÀÌµæ ´ë¿ªÆøÀº 40~60nm¿¡ À̸£¸ç À̵æ Æòźȭ ÇÊÅ͸¦ »ç¿ëÇÏÁö ¾Ê°íµµ 10~20nmÀÇ ³ÐÀº ´ë¿ªÆøÀ» 1dB À̳»¿¡¼­ ¾òÀ» ¼ö ÀÖ´Ù[32]. ÇöÀç±îÁö Ãʱ¤´ë¿ª ±¤ÁõÆø¿¡ À־ ¶ó¸¸ ÁõÆø ±â¼úÀº Å©°Ô ¹Ì±¹ÀÇ Lucent Technologies, ÀϺ»ÀÇ NTT, ¿µ±¹ÀÇ Imperial College, ·¯½Ã¾ÆÀÇ General Physical Institute µî¿¡¼­ ÁÖµµÀûÀ¸·Î °³¹ßÇØ¿ÔÀ¸³ª, ¶ó¸¸ ÆßÇο¡ »ç¿ëÇÒ ¼ö ÀÖ´Â °íÃâ·Â ÆßÇÁ LDÀÇ Á¦ÀÛ ¹× º¸±Þ°ú ´õºÒ¾î ¶ó¸¸ ÁõÆø±âÀÇ ¿ëµµ°¡ ÁõÆø ´ë¿ªÀÇ È®ÀåÀ¸·ÎºÎÅÍ Àü¼Û °Å¸®ÀÇ È®Àå °³³äÀ¸·Î ¿Å°Ü°¡±â ½ÃÀÛÇϸ鼭 ±Þ¼ÓÈ÷ º¸ÆíÈ­ µÇ±â ½ÃÀÛÇÏ¿´´Ù. ÀÌ·¯ÇÑ »çÁ¤Àº ÃÖ±Ù °³ÃÖµÈ OFC2000¿¡¼­µµ ¿©½ÇÈ÷ µå·¯³ª ¶ó¸¸ ÁõÆø±â¿Í °ü·ÃµÈ ¹ßÇ¥ ³í¹®ÀÌ 20¿© Æí¿¡ À°¹ÚÇÏ¿´À¸¸ç, ƯÈ÷ EDFA/FRAÀÇ º¹ÇÕ ±¸Á¶¸¦ °¡Áö´Â ÁõÆø±â¸¦ äÅÃÇÑ Àü¼Û ½ÇÇèÀÌ ´«¿¡ ¶ç°Ô Áõ°¡ÇÏ¿´´Ù. »ó¿ë WDM ½Ã½ºÅÛ¿¡µµ FRA¸¦ ÀÌ¹Ì Àû¿ëÇÏ°í ÀÖÀ¸¸ç ±¤¼¶À¯ ¶ó¸¸ ·¹ÀÌÀú, ¶ó¸¸ ÆßÇÁ LD µîÀÇ »ó¿ëÇ°ÀÌ ÀÌ¹Ì ½ÃÆǵǰí ÀÖ´Â ½ÇÁ¤ÀÌ´Ù[33]. FRAÀÇ ÀåÁ¡À¸·Î´Â EDFA¿¡¼­¿Í °°ÀÌ À̵æÀ» ¾ò±â À§ÇØ Æ¯¼öÇÑ ±¤¼¶À¯°¡ ÇÊ¿äÄ¡ ¾Ê°í, ƯÁ¤ ÆÄÀåÀÇ ÆßÇÎ ±¤¿øÀÌ Á¸ÀçÇÒ °æ¿ì ¾î¶°ÇÑ ½ÅÈ£ ´ë¿ª¿¡¼­µµ À̵æÀ» ¾òÀ» ¼ö ÀÖ°í, ÀÌµæ ´ë¿ªÆøÀÌ ³Ð°í, ÀÔ·Â ÆßÇÁ°¡ ¾øÀ» °æ¿ì¿¡µµ ºÎ°¡ÀûÀÎ ¼Õ½ÇÀÌ ¾øÀ¸¸ç, ºÐÆ÷Çü À̵æÀÌ °¡´ÉÇÏ°í ÀÌ °æ¿ì ÀâÀ½ÀÌ ÀÛ´Ù´Â Á¡ µîÀ» µé ¼ö ÀÖ´Ù. ´ÜÁ¡À¸·Î´Â ÃæºÐÇÑ À̵æÀ» ¾ò±â À§ÇØ ÇÊ¿äÇÑ ±¤¼¶À¯ÀÇ ±æÀÌ°¡ EDF¿¡ ºñÇÏ¿© 100¹è ÀÌ»ó ±æ¾î¾ß ÇÏ°í, °íÃâ·Â ÆßÇÎ ±¤¿øÀÌ ÇÊ¿äÇϸç, ÆßÇα¤°ú ½ÅÈ£±¤ »çÀÌÀÇ crosstalk, double Rayleigh »ê¶õ¿¡ ÀÇÇÑ ÀâÀ½ µîÀ» ÁöÀûÇÒ ¼ö ÀÖ´Ù.


FRAÀÇ À̵æÀÌ ¾î´À Á¤µµ µÇ´ÂÁö °¨À» Àâ±â À§ÇØ °è»êÀ» ÇØ º»´Ù¸é, ´ÜÀÏ ÆÄÀå ÆßÇÁ¿¡ ´ëÇÏ¿© À¯È¿´Ü¸éÀû 50§­2(mode field diameter ~8§­¿¡ ÇØ´ç)ÀÎ ½Ç¸®Ä« ±¤¼¶À¯ 1kmÀÇ °æ¿ì, ÆÄÀå 1.55§­¿¡¼­ ÃÖ´ë ¶ó¸¸ ÀÌµæ °è¼ö¸¦ 6¡¿10-14m/W·Î °¡Á¤ÇÒ ¶§ ÆßÇα¤ 1W¿¡ ´ëÇÏ¿© ON/OFF À̵æÀº ¾à 5dB Á¤µµÀÌ´Ù[32]. ¿©±â¼­ ON/OFF À̵æÀº ½ÅÈ£°¡ 1kmÀÇ ±¤¼¶À¯¸¦ Áö³ª´Â µ¿¾È °¨¼âµÈ °ÍÀ» °í·ÁÇÏ´Â °ÍÀ¸·Î ÆßÇÁ¸¦ ²°´Ù°¡ Ä×À» ¶§ Ãâ·Â´Ü¿¡¼­ ½ÅÈ£°¡ ¾ó¸¶³ª Ä¿Áö´Â °¡¸¦ ÀǹÌÇÑ´Ù. Áï, ±¤¼¶À¯ÀÇ °¨¼âÀ²ÀÌ 0.2dB/kmÀÎ °æ¿ì, EDFA¿Í °°Àº discrete ÁõÆø±â °³³äÀÇ ÀÔÃâ·Â¿¡ ´ëÇÑ À̵æÀº ¾à 4.8dB°¡ µÇ´Â °ÍÀÌ´Ù.


¹Ì±¹ Tyco submarineÀÇ Rottwitt µîÀº 200mW ´ëÀÇ 1,453, 1,495nm µÎ °¡Áö ÆÄÀåÀ» ¿ª¹æÇâ ÆßÇÎ ±¤¿øÀ¸·Î »ç¿ëÇÏ¿© 45km DSF·ÎºÎÅÍ 92nm(1,516~1,608nm)¿¡ À̸£´Â ´ë¿ªÆø¿¡¼­ ¹«¼Õ½Ç Àü¼ÛÀÌ °¡´ÉÇÔÀ» óÀ½À¸·Î º¸¿´´Ù(±×¸² 13). ÀϹÝÀûÀ¸·Î FRA¿¡¼­´Â ÆßÇÁ±¤°ú ½ÅÈ£±¤ »çÀÌÀÇ crosstalkÀ» ÁÙÀ̱â À§ÇØ ¿ª¹æÇâ ÆßÇÎÀ» »ç¿ëÇÏ´Â °ÍÀÌ À¯¸®ÇÑ °ÍÀ¸·Î ¾Ë·ÁÁ® ÀÖ´Ù[34]. ÀÌ ¶§ »ç¿ëÇÑ ÆßÇÎ ±¤¿øÀº °íÃâ·Â LD·Î ÆßÇÎÇÑ double cladding Yb ÷°¡ ±¤¼¶À¯ ·¹ÀÌÀú¸¦ »ç¿ëÇÏ¿© ÆßÇνÃŲ cascade ±¤¼¶À¯ ¶ó¸¸ ·¹ÀÌÀú ¿´´Ù[35]. Âü°í·Î cladding-pumped Yb-doped ±¤¼¶À¯ ·¹ÀÌÀú´Â 820~1,060nm ´ë¿ªÀÇ ¼ö W ÀÌ»óÀÇ °íÃâ·Â LD·Î ÆßÇÎÀÌ °¡´ÉÇÏ¸ç ·¹ÀÌÀúÀÇ °æ»çÈ¿À²ÀÌ 80%¿¡ À°¹ÚÇϱ⠶§¹®¿¡ 975~1,150nmÀÇ °íÃâ·Â ±¤¿øÀ» ¾òÀ» ¼ö ÀÖ´Ù. ÀÌ ±¤¿øÀ¸·ÎºÎÅÍ 1,550nm ´ë¿ªÀÇ ¶ó¸¸ À̵æÀ» ¾ò±â À§ÇÑ 1,450nm ´ë¿ªÀÇ ÆßÇα¤¿øÀ» ¾ò±â À§Çؼ­´Â FBG³ª WDM ±¤°áÇÕ±â·Î ¶ó¸¸ ·¹ÀÌÀú °øÁø±â¸¦ ±¸¼ºÇÏ¿© ¼øÂ÷ÀûÀ¸·Î ¶ó¸¸ ·¹ÀÌÀú¸¦ ¹ß»ý½ÃŲ´Ù. ÀÌ°ÍÀ» cascaded ±¤¼¶À¯ ¶ó¸¸ ·¹ÀÌÀú¶ó°í ÇÑ´Ù. ÀÌ °æ¿ì 1,117nmÀÇ Yb ±¤¼¶À¯ ·¹ÀÌÀú ÆßÇÎÀ¸·ÎºÎÅÍ ¾òÀ» ¼ö ÀÖ´Â 1,480nmÀÇ ±¤¼¶À¯ ¶ó¸¸ ·¹ÀÌÀú Ãâ·ÂÀÇ °æ»çÈ¿À²Àº 46%¿¡ ´ÞÇÏ´Â °ÍÀ¸·Î º¸°íµÇ¾ú´Ù[36]. »ç½Ç»ó FRA ±â¼úÀÇ ³­Á¦ Áß Çϳª·Î ¿©°ÜÁ³´ø °íÃâ·Â ÆßÇÎ ±¤¿øÀÇ ºÎÀç ¹®Á¦°¡ À̷νá ÇØ°áÀÌ µÈ ¼ÀÀ̾ú´Ù. ÀÌ·¯ÇÑ °íÃâ·Â cascaded ±¤¼¶À¯ ¶ó¸¸ ·¹ÀÌÀú¸¦ ÀÌ¿ëÇÑ FRA´Â ¹Ì±¹ÀÇ Lucent Technologies, Tyco Submarine Systems, ·¯½Ã¾ÆÀÇ General Physical Institute, ±×¸®°í ¿µ±¹ÀÇ Imperial College µî¿¡¼­ ¼±µÎÀûÀ¸·Î °³¹ßÇÏ¿© ÀÌ¹Ì FRAÀ» ÀÌ¿ëÇÑ 1.3§­¿Í 1.5§­ ´ë¿ªÀÇ ´ÜÀÏ Ã¤³Î ¶Ç´Â ´Ùä³Î WDM Àü¼Û ½ÇÇèÀ» ¼öÇàµÇ°í ÀÖÀ¸¸ç[37~43], ´ÙÁß ÆßÇο¡ ÀÇÇÑ 1,550nm ´ë¿ªÀÇ Ãʱ¤´ë¿ª FRAÀÇ °³¹ßµµ º»°ÝÈ­µÇ°í ÀÖ´Ù[44-46]. ÇöÀç ÀÌ·¯ÇÑ °íÃâ·Â ÆßÇÎ ±¤¿øÀº SDL°ú IRE POLUS µî¿¡¼­ »ó¿ëÇ°À» ÆǸÅÇÏ°í ÀÖ´Ù.



ÇÑÆí, ÀϺ»¿¡¼­´Â °íÃâ·Â ÆßÇÎ¿ë ±¤¿øÀÇ °³¹ßº¸´Ù´Â ³ÐÀº ÁõÆø ´ë¿ªÀ» ¾ò±â À§ÇÑ ´ÙÆÄÀå ÆßÇÁ LDÀÇ ´ÙÁßÈ­¿¡ ÁßÁ¡À» µÎ¾ú´Ù. FurukawaÀÇ Tanaka µîÀº PLC(Planar Lightwave Circuit) ±â¼úÀ» ÀÌ¿ëÇÑ MZI(Mach-Zehnder interferometer)¸¦ »ç¿ëÇÏ¿© ÆÄÀåÀÌ 7.5nm °£°ÝÀ¸·Î ¶³¾îÁ® ÀÖ´Â FBG·Î ¾ÈÁ¤È­µÈ Á¼Àº ¼±ÆøÀÇ ÆßÇÁ LD 8°³¸¦ ¹­À» ¼ö ÀÖ´Â ÀåÄ¡¸¦ °í¾ÈÇÏ¿´´Ù[47]. °°Àº ±×·ìÀÇ Emori µîÀº °°Àº ¹æ¹ýÀ¸·Î °¢°¢ Æí±¤ °áÇÕµÈ 12°³ÀÇ ÆßÇÁ ÆÄÀåÀ» ´ÙÁßÈ­ ½ÃÄÑ ÃÑ 2.2WÀÇ Ãâ·ÂÀ» °®´Â ¶ó¸¸ ÆßÇÁ ¸ðµâÀ» °³¹ßÇÏ¿´°í[48], À̸¦ ÅëÇØ 100nmÀÇ ´ë¿ªÆøÀ» °®´Â FRA¸¦ ¹ßÇ¥ÇÏ¿´´Ù. À̵æÀº SMF 25km¿¡¼­ ¾à 2dB, RDF(reverse dispersion fiber) 20km¿Í DSF 25km¿¡¼­ 6~7dB¿´´Ù(±×¸² 14). ¿©±â¼­ ÇÑ°¡Áö Èï¹Ì·Î¿î »ç½ÇÀº ÀÌ¿Í °°Àº WDM ÆßÇνà ÆßÇÁ ÆÄÀå »óÈ£°£ÀÇ ¶ó¸¸ ÁõÆø È¿°ú ¶§¹®¿¡ 1,550nm ´ë¿ªÀÇ ÆòźÇÑ À̵æÀ» ¾ò±â À§ÇÑ °³º° ÆßÇÁÀÇ ¼¼±â°¡ ´ÜÆÄÀåÀϼö·Ï Ä¿¾ß ÇÑ´Ù´Â »ç½ÇÀÌ´Ù.



NTTÀÇ Masuda µîÀº FRA¸¦ EDFA¿Í º´ÇàÇÏ¿© »ç¿ëÇÔÀ¸·Î½á º¸´Ù ³ÐÀº ´ë¿ªÆøÀ» °®´Â È¥ÇÕÇü ±¤ÁõÆø±â¸¦ °³¹ßÇÏ¿´°í ±×µ¿¾È ¹ßÇ¥ÇÑ °á°úµéÀ» OFC2000¿¡¼­ Á¤¸® ¹ßÇ¥ÇÏ¿´´Ù[49]. Masuda µîÀº ÁÖ·Î 1,470~1,505nm »çÀÌÀÇ ÆßÇÁ LD µÎ °³¸¦ Æí±¤ °áÇÕÇÑ ÈÄ ¿ª¹æÇ⠶Ǵ ¼ø¹æÇâÀ¸·Î ÆßÇÁ/½ÅÈ£ WDM °áÇձ⳪ ±¤¼øȯ±â µîÀ» »ç¿ëÇÏ¿© ÆßÇÎÇÏ¿´´Ù. ÀÌ·¯ÇÑ ¹æ¹ýÀ» »ç¿ëÇÏ¿© ¾òÀº ´ë¿ªÆøÀº 82.8nm·Î(±×¸² 15), 1.51§­¿¡¼­ 200mW·Î ¿ª¹æÇâ ÆßÇÎÇÑ DSF 50km, 1.48§­¿¡¼­ 100mW·Î ¼ø¹æÇâ ÆßÇÎÇÑ fluoride EDFA 2.0m, 1.48§­¿Í 1.51§­¿¡¼­ °¢°¢ 100mW, 200mW·Î ¾ç¹æÇâ ÆßÇÎÇÑ DSF 50km, ±×¸®°í 1.48§­¿¡¼­ 100mW·Î ¼ø¹æÇâ ÆßÇÎÇÑ ½Ç¸®Ä« EDFA 2.5m¸¦ »ç¿ëÇÏ¿´´Ù[50]. ¶ÇÇÑ 1,530nm ÀÌÇÏÀÇ ´ë¿ª°ú 1,540nm ´ë¿ªÀ» ³ª´« µÎ ¹êµåÀÇ ÆòÇà ±¸Á¶¸¦ »ç¿ëÇÏ¿© 132nmÀÇ Àüü ÁõÆø ´ë¿ªÆøÀ» ¾ò±âµµ ÇÏ¿´´Ù[51].



FRAÀÇ ÀÀ¿ëÀº Áö±Ý±îÁö ¾ð±ÞÇÑ Àü¼Û·ÎÀÇ ¼Õ½ÇÀ» º¸»óÇϱâ À§ÇÑ ÁõÆø±â·Î½áÀÇ ¿ªÇÒ »Ó ¾Æ´Ï¶ó ºÐ»ê º¸»ó ±¤¼¶À¯(DCF, dispersion compensating fiber)ÀÇ ¼Õ½ÇÀ» º¸»óÇϱâ À§ÇÑ ¿ªÇÒ¿¡µµ »ç¿ëµÇ°í ÀÖ´Ù. DCF´Â ÄÚ¾îÀÇ Á÷°æÀÌ À۱⠶§¹®¿¡ ÀÛÀº ÆßÇÁ Ãâ·ÂÀ¸·Îµµ Å« ¶ó¸¸ À̵æÀ» ¾òÀ» ¼ö ÀÖ´Â ÀåÁ¡ÀÌ ÀÖ´Ù. DCF´Â ¼Õ½ÇÀÌ Å©±â ¶§¹®¿¡ Àü¼Û¿¡ À־´Â ÀÌ·¯ÇÑ DCFÀÇ À§Ä¡¸¦ 2´Ü°è·Î ³ª´©¾îÁø EDFAÀÇ Áß°£¿¡ µÒÀ¸·Î½á ¼Õ½ÇÀ» º¸»óÇÏ´Â ±â¹ýÀ» ¸¹ÀÌ »ç¿ëÇÑ´Ù. ¼Õ½ÇÀÌ ¾ø´Â DCF¸¦ »ç¿ëÇÒ °æ¿ì EDFAÀÇ ±¸Á¶°¡ °£´ÜÇØ Áö¸ç Àú°¡ÀÇ EDFA¸¦ ¸¸µé ¼ö ÀÖ´Â °¡´É¼ºÀÌ ÀÖ´Ù. ÀÌ·¯ÇÑ ¹«¼Õ½Ç DCF¿¡ ´ëÇÑ ¿¬±¸¿¡ ´ëÇÏ¿©´Â ¿©±â¼­´Â ´õ ÀÌ»ó ¾ð±ÞÇÏÁö ¾Ê°í Âü°í ¹®Çå [52~54]À» ¼Ò°³ÇÏ´Â °ÍÀ¸·Î ´ë½ÅÇÑ´Ù.


¸¶Áö¸·À¸·Î ÃÖ±ÙÀÇ FRAÀ» ÀÌ¿ëÇÑ ´Ùä³Î WDM Àü¼ÛÀÇ µ¿ÇâÀ» »ìÆ캸¸é, ¿ì¼± Lucent TechnologiesÀÇ Neilsen µîÀº ÁõÆø±â·Î½á DCF¿Í À̵æ Æòźȭ ÇÊÅ͸¦ Æ÷ÇÔÇÏ´Â dual C/L-band EDFA¿Í 1,447nm 600mW, 1,485nm 220mW·Î ¿ª¹æÇâ ¶ó¸¸ ÆßÇÎÇÑ NZ-DSF(nonzero-DSF)¸¦ »ç¿ëÇÏ¿© 100GHz °£°ÝÀÇ 40Gb/s, 40(C-band) + 42(L-band) ä³ÎÀ» NZ-DSF¸¦ ÅëÇØ ÃÑ 300km Àü¼ÛÇÑ °á°ú¸¦ ¹ßÇ¥ÇÏ¿´´Ù[11]. ÀÌ ¶§ FRA¿Í EDFA¿¡ ÀÇÇÑ ÃÖ´ë À̵æÀº C-band¿¡¼­ 25dB, L-band¿¡¼­ 24dB¿´´Ù. ½ÅÈ£ ä³ÎÀÇ ´ë¿ªÆøÀº C-bandÀÇ °æ¿ì 31.1nm(1,530.7~1,561.8nm), L-bandÀÇ °æ¿ì 34.5nm(1,570.42~1604.88nm)¿´°í ÃÑ Àü¼Û¿ë·®Àº 3.28Tb/s¿´´Ù. Lucent TechnologiesÀÇ Srivastava µîÀº 1,480nm ÆßÇÁ LD µÎ °³¸¦ Æí±¤ °áÇÕ±â·Î °áÇÕÇÏ¿© NZ-DSF 100km ÀÌ»óÀ» ¿ª¹æÇâ ¶ó¸¸ ÆßÇÎÇÏ°í ´Ù½Ã L-band EDFA¸¦ ÅëÇØ ½ÅÈ£¸¦ ÁõÆøÇÏ¿© 25GHz ä³Î °£°ÝÀÇ 10Gb/s 100ä³ÎÀ» 400 km Àü¼ÛÇÏ¿´´Ù[55]. ±×´Â ÀÌ¹Ì ÀÌ·¯ÇÑ »ó¿ë 1,480nm ÆßÇÁ LD¸¦ »ç¿ëÇÑ ¶ó¸¸ ÆßÇÎÀ» ÅëÇØ 4~5dBÀÇ OSNR Çâ»óÀÌ ÀÖÀ½À» º¸°íÇÑ ¹Ù ÀÖ´Ù[5]. ÀÌ°ÍÀº ½ºÆÒ °Å¸®¸¦ Áõ°¡½Ãų ¼ö ÀÖ¾î º¸´Ù Àå°Å¸® Àü¼Û ¶Ç´Â °°Àº Àü¼Û °Å¸® ³»ÀÇ ÁõÆø±â ¼öÀÇ °¨¼Ò È¿°ú¸¦ °¡Á®´Ù ÁÖ´Â ÀÌÁ¡ÀÌ ÀÖ´Ù. ÆßÇÁ ¼¼±â 22dBm¿¡ ´ëÇÏ¿© ÃÖ´ë ¶ó¸¸ ÁõÆø À̵æÀº 1,585nm¿¡¼­ 10dB ¿´À¸¸ç, EDFAÀÇ °æ¿ì ÃÖ´ë Ãâ·Â 18.6dBm, À̵æ 25dB, ÀâÀ½Áö¼ö 6.8dB, À̵æ ÆíÂ÷ 1.5dB À̳»¿¡ ´ë¿ªÆø 29nm¿´´Ù. ±×¸®°í Àü¼Û¿¡ »ç¿ëÇÑ ½ÅÈ£ÀÇ ´ë¿ªÀº 20.7nm(1,570.9~1,591.6nm)¿´´Ù.


ÀϺ» Fujitsu lab.ÀÇ Terahara µîÀº ¿ª½Ã dual band C/L-band EDFA¿Í ÇÔ²² 1.44§­ (170mW)¿Í 1.48§­(120mW) ÆßÇÁ ÆÄÀåÀ» Æí±¤ °áÇÕÇÏ¿© ¿ª¹æÇâ ÆßÇÎÇÑ FRAÀ» ÁõÆø±â·Î »ç¿ëÇÏ¿© 50GHz ä³Î °£°ÝÀÇ 10.66Gb/s 128 ä³ÎÀ» SMF¸¦ ÅëÇØ 840km(6¡¿140km) Àü¼ÛÇÏ¿´´Ù[13]. ÀÌ ¶§ FRAÀÇ Æò±Õ À̵æÀº 5.8dB(C-band), 5.4dB(L-band)¿´´Ù. ±× ¹Û¿¡µµ C-band ´ë¿ª¿¡¼­µµ Àü¼Û·Î¸¦ ¶ó¸¸ ÆßÇÎÇÏ¿© ½Ã½ºÅÛÀÇ ¼º´ÉÀ» °³¼±ÇÑ °á°úµéÀÌ º¸°íµÇ¾ú´Ù[56~59].



IV. °á ·Ð


Áö±Ý±îÁö ±âÁ¸ÀÇ EDFAÀÇ ¼º´ÉÀ» ´É°¡ÇÏ´Â Ãʱ¤´ë¿ª ±¤ÁõÆø ±â¼ú¿¡ ´ëÇÑ ¼¼°èÀû µ¿ÇâÀ» ÁÖ·Î ÃÖ±Ù¿¡ °³ÃÖµÈ ±¤Åë½Å °ü·Ã ÇÐȸ¿Í Àú³Î ³í¹®µéÀ» ÅëÇÏ¿© »ìÆ캸¾ÒÀ¸¸ç, ±× °¡¿îµ¥´Â dual C/L-band EDFA, tellurite-based EDFA, Tm-DFA, Pr-DFA, ±×¸®°í FRA µîÀÌ ÀÖ¾ú´Ù. ÀÌ °¡¿îµ¥ WDM ½Ã½ºÅÛÀÇ Ãø¸é¿¡¼­ ¾ÕÀ¸·Î °è¼ÓÇؼ­ ÁÖ¸ñÀ» ¹ÞÀ» °ÍÀº dual C/L-band EDFA¿Í ¶ÇÇÑ ÀÌ¿Í °áÇÕµÈ FRA°¡ µÉ °ÍÀ¸·Î º¸ÀδÙ. 100nm ÀÌ»óÀÇ ±¤ÁõÆø ´ë¿ªÀ» ¾ò±â À§Çؼ­´Â FRAÀÇ µµÀÔÀÌ ºÒ°¡ÇÇÇϸç, 100nm¸¦ ÈξÀ ¶Ù¾î ³Ñ´Â ÁõÆø ´ë¿ªÀ» ÇÊ¿ä·Î ÇÒ °æ¿ì, ´Ù¸¥ ¹êµå¿ÍÀÇ ¹êµå ´ÙÁßÈ­¸¦ ÅëÇÑ ÆòÇà ±¸Á¶·Î °¡´Â °ÍÀÌ °¡´ÉÇÒ °ÍÀÌ´Ù. ±×·¯³ª ÇöÀçÀÇ ±â¼úÀû µ¿ÇâÀ¸·Î º¼ ¶§ ´ë¿ªÆøÀÇ È®Àå º¸´Ù´Â ±âÁ¸ÀÇ EDFA¿Í C/L-band EDFAÀÇ ´ë¿ªÆø ¾È¿¡¼­ ä³Î °£°ÝÀ» ÁÙ¿© DWDMÀ¸·Î ÇâÇÏ´Â °Í°ú ÇÔ²² distributed FRA¸¦ ÇÔ²² äÅÃÇÏ¿© ¸µÅ© ¸¶ÁøÀ» È®Àå½ÃÄÑ ³ª°¡´Â °ÍÀÌ °æÁ¦¼º°ú ÇÔ²² ±â¼úÀû ³­À̵µ¸¦ ÇØÃÄ°¡´Â ÁÖµÈ ¹æÇâÀÌ µÉ °ÍÀ¸·Î º¸ÀδÙ.


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  1. K. Nakagawa, ¡°Progress in Optical Amplifiers and the Future of Optical Communications Systems¡±, Technical Digest of 10th Optical Amplifiers and Their Applications(Nara, Japan, 1999), p.2 ? 5(paper WA1).



  2. A. K. Srivastava, et.al., ¡°1 Tb/s Transmission of 100 WDM 10Gb/s Channels Over 400km of TrueWaveTM Fiber¡±, Technical Digest of OFC¡¯98(San Jose, California, USA, 1998), paper PD10.



  3. M. Yamada, et.al., ¡°Gain-flattened tellurite-based EDFA with a flat amplification bandwidth of 76nm¡±, Technical Digest of OFC¡¯98(San Jose, California, USA, 1998), paper PD7.



  4. E. M. Dianov, ¡°Raman fiber amplifiers¡±, Technical Digest of 10th Optical Amplifiers and Their Applications(Nara, Japan, 1999), p. 68 ? 71(paper ThA1).



  5. A. K. Srivastava, et.al., ¡°System Margin Enhancement with Raman Gain in Multi-Span WDM Transmission¡±, Technical Digest of OFC¡¯99(San Diego, California, USA, 1999), p. 53 ? 55(paper FC2).



  6. M. Yamada, et.al., ¡°Broadband and gain-flattened amplifier composed of a 1.55§­ -band and a 1.58§­-band Er3+-doped fibre amplifier in a parallel configuration¡±, Electron. Lett. 33(8), 710 ? 711(1997).



  7. J. F. Massicott, et.al., ¡°High-gain, broadband, 1.6§­ Er3+-doped silica fibre amplifier¡±, Electron. Lett. 26, 1645-1646(1990).



  8. H. Ono, et.al, ¡°Gain-flattened Er3+-doped fibre amplifier for a WDM signal in the 1.57 to 1.60§­ wavelength region¡±, IEEE Photon. Technol. Lett. 9(5), 596 ? 598(1997).



  9. Y. Sun, et.al., ¡°An 80nm Ultra Wide Band EDFA with Low Noise Figure and High Output Power¡±, IOOC-ECOC¡¯97(Edinburgh, UK, 1997), vol. 5(postdeadline papers), 69 ? 72.



  10. Y. Sun, et.al., ECOC¡¯98(Madrid, Spain, 1998), p.53.



  11. T. N. Nielsen, et.al., ¡°3.28Tb/s(82¡¿40Gb/s) transmission over 3¡¿100km nonzero-dispersion fiber using dual C-band L-band hybrid Raman/Erbium-doped inline amplifiers¡±, OFC2000 (Baltimore, Maryland, USA, 2000), paper PD23.



  12. T. Ito, et.al., ¡°3.2Tb/s?1,500km WDM transmission experiment using 64nm hybrid repeater amplifiers¡±, OFC2000(Baltimore, Maryland, USA, 2000), paper PD24.



  13. T. Terahara, et.al., ¡°128¡¿10.66Gb/s transmission over 840km standard SMF with 140km optical repeater spacing(30.4dB loss) employing dual-band distributed raman amplification¡±, OFC2000 (Baltimore, Maryland, USA, 2000), paper PD28.



  14. Nortel networks, system named OPTERA, exhibited at OFC2000 exhibitions.



  15. J. S. Wang, et.al., Opt. Mater. 3, 187(1994).



  16. A. Mori, et.al., ¡°Erbium-doped tellurite glass fibre laser and amplifier¡±, Electron. Lett. 33(10), 863 ? 864(1997).



  17. A. Mori, et.al., ¡°1.5mm broadband amplification by tellurite-based EDFAs,¡± OFC¡¯97(Dallas, Texas, USA, 1997), paper PD1.



  18. M. Yamada, et.al., ¡°Low-noise gain-flattened Er3+-doped tellurite fiber amplifier¡±, OSA Trends in Optics and Photonics series, vol.25(OAA¡¯98 in Vail, Colorado, USA, 1998), p. 86 ? 89.



  19. T. Nakai, et.al., ¡°980nm-pumped Er-doped tellurite-based fiber amplifier¡±, OSA Trends in Optics and Photonics Series on OAA¡¯98(Vail, Colorado, USA, 1998), vol.25, p.82 ? 85.



  20. A. Mori, et.al., ¡°A 50nm broadband tellurite-based EDFA with a 0.6 dB gain excursion and a 25.3 dB gain for 1.58mm-band WDM signals¡±, ECOC¡¯99(Nice, France, 1999), I-268 ? I-269.



  21. Company catalogues of Thorlabs and NEL(1999).



  22. A. Mori, et.al., ¡°Ultra-broadband amplification for DWDM systems¡±, ECOC¡¯99(Nice, France, 1999), I-260 ? I-263.



  23. Y. Nishida, et.al., ¡°Development of an efficient praseodymium-doped fiber amplifier¡±, IEEE J. of Quantum Electron. 34(8), 1332 ? 1339(1998).



  24. M. Sugo, et.al., ¡°Development of 1.02§­ pump laser diodes¡±, OSA Trends in Optics and Photonics Series on OAA¡¯96(Monterey, CA, USA, 1996), vol.5, p.101 ? 104.



  25. J. Temmyo, et.al., ¡°A 310-mW fiber coupled, wavelength-stabilized 1.016mm InGaAs quantum well laser using a fiber Bragg grating¡±, CLEO¡¯96(Anaheim, CA, USA, 1996), paper CTuT6.



  26. Y. Nishida, et.al., ¡°Efficient PDFA module using high-NA PbF2/InF3-based fluoride fiber¡±, IEEE Photon. Technol. Lett. 9(3), 318 ? 320(1997).



  27. J. Kani, et.al., ¡°Trinal-wavelength-band WDM transmission over dispersion-shifted fibre¡±, Electron. Lett. 35(4), 321 ? 322(1999).



  28. T. Sakamoto, et.al., ¡°Gain-equalized thulium-doped fiber amplifiers for 1,460nm-band WDM signals¡±, Technical Digest of OAA¡¯99(Nara, Japan, 1999), paper WD2.



  29. T. Sakamoto, et.al., ¡°Thulium-doped fluoride fiber amplifiers for 1.4§­ and 1.6§­ operation¡±, OSA Trends in Optics and Photonics Series on OAA¡¯96 (Monterey, CA, USA, 1996), vol. 5, p. 105 ? 115.



  30. F. Roy, et.al., ¡°Novel pumping schemes for thulium doped fiber amplifier¡±, OFC2000(Baltimore, Maryland, USA, 2000), paper WA6.



  31. J. Kani, et.al., ¡°Trinal-wavelength-band WDM transmission over dispersion-shifted fibre¡±, Electron. Lett. 35(4), 321 ? 322(1999).



  32. G. P. Agrawal, Fiber Optic Communication Systems, 2nd ed.(John Wiley & Sons, Inc, New York, 1997), Ch. 8.



  33. Qtera, SDL, JDS Uniphase, Lucent Technologies, FITEL, Alcatel, etc., exhibited at OFC2000 exhibitions.



  34. F. Forghieri, et.al., ¡°Bandwidth of cross talk in Raman amplifiers¡±, Technical Digest of OFC¡¯94, paper FC6, 294 ? 295.



  35. K. Rottwitt and H. D. Kidorf, ¡°A 92nm Bandwidth Raman Amplifier¡±, Technical Digest of OFC¡¯98 (San Jose, California, USA, 1998), paper PD6.



  36. S. Grubb, et.al., ¡°High-power fiber amplifiers and lasers¡±, OFC¡¯96, Tutorial Sessions, paper ThO, 243 ? 260.



  37. T. N. Nielson, et.al., ¡°8¡¿10Gb/s 1.3§­ unrepeatered transmission over a distance of 141 km with Raman post- and pre-amplifiers¡±, IEEE Photon. Technol. Lett. 10(10), 1492 ? 1494(1998).



  38. P. B. Hansen, et.al., ¡°Capacity upgrades of transmission systems by Raman amplification¡±, IEEE Photon. Technol. Lett. 9(2), 262 ? 264(1998).



  39. A. J. Stentz, et.al., ¡°Raman ring amplifier at 1.3§­ with analog-grade noise performance and an output power of 23dBm¡±, Technical Digest of OFC¡¯96, paper PD16.



  40. M. X. Ma, et.al., ¡°240-km repeater spacing in a 5,280-km WDM system experiment using 8¡¿2.5Gb/s NRZ transmission¡±, IEEE Photon. Technol. Lett. 10(6), 893-895(1998).



  41. M. Nissov, et.al., ¡°100Gb/s(10¡¿10Gb/s) WDM transmission over 7,200km using distributed Raman amplification¡±, IOOC-ECOC¡¯97(Edinburgh, UK, 1997), vol.5, postdeadline papers, 9 ? 12.



  42. D. V. Gapontsev, et.al., ¡°Fibre Raman amplifiers for broadband operation at 1.3§­¡±, Opt. Comm. 166, 85 ? 88(1999).



  43. E. M. Dianov, et.al., ¡°Highly efficient 1.3§­ Raman fibre amplifier¡±, Electron. Lett. 34(7), 669 ? 670(1998).



  44. S. V. Chernikov, et.al., ¡°Broadband Raman amplifiers in the spectral range of 1,480?1,620nm¡±, Technical Digest of OFC/IOOC¡¯99(San Diego, CA, USA, 1999), paper WG6.



  45. H. Kidorf, et.al., ¡°Pump interactions in a 100-nm bandwidth Raman amplifier¡±, IEEE Photon. Technol. Lett. 11(5), 530 ? 532(1999).



  46. S. A. E. Lewis, et.al., ¡°Multi-wavelength pumped silica fibre Raman amplifier¡±, OAA¡¯99(Nara, Japan, 1999), paper ThA2.



  47. K. Tanaka, et.al., ¡°Low loss integrated Mach-Zehnder-interferometer-type eight-wavelength multiplexer for 1,480nm band pumping¡±, Technical Digest of OFC/IOOC¡¯99(San Diego, CA, USA, 1999), paper TuH5.



  48. Y. Emori and S. Namiki, ¡°100nm bandwidth flat gain Raman amplifiers pumped and gain equalized by 12-wavelength-channel WDM high power laser diodes¡±, Technical Digest of OFC/IOOC¡¯99 (San Diego, CA, USA, 1999), paper PD19.



  49. H. Masuda, ¡°Review of wideband hybrid amplifiers¡±, OFC2000(Baltimore, Maryland, USA, 2000), paper TuA1.



  50. H. Masuda, et.al., ¡°Wide-band and low noise optical amplification using distributed Raman amplifiers and erbium-doped fiber amplifiers¡±, ECOC¡¯98(Madrid, Spain, 1998), 51 ? 52.



  51. H. Masuda and S. Kawai, ¡°Ultra wide-band Raman amplification with a total gain-bandwidth of 132nm of two gain-bands around 1.5§­¡±, ECOC¡¯99(Nice, France, 1999), II-146 ? 147.



  52. Y. Emori, et.al., ¡°Broadband lossless DCF using Raman amplification pumped by multichannel WDM laser diodes¡±, Electron. Lett. 34(22), 2145 ? 2146(1998).



  53. P. B. Hansen, et.al., ¡°Raman amplification for loss compensation in dispersion compensating fibre modules¡±, Electron. Lett. 34(11), 1136 ? 1137(1998).



  54. S. A. E. Lewis, et.al., ¡°Low-noise high gain dispersion compensating broadband Raman amplifier¡±, OFC2000(Baltimore, Maryland, USA, 2000), paper TuA2.



  55. A. K. Srivastava, et.al., ¡°Ultra-dense terabit capacity WDM transmission in L-band¡±, OFC2000 (Baltimore, Maryland, USA, 2000), paper PD27.



  56. K. Takashina, et.al., ¡°1Tbit/s(100¡¿10Gbit/s) WDM repeaterless transmission over 200km with Raman amplifier¡±, OFC2000 (Baltimore, Maryland, USA, 2000), paper FC8.



  57. JB. Leroy, et.al., ¡°32¡¿10Gbit/s transmission over 8000 km using hybrid Raman-Erbium doped fiber optical amplifiers¡±, OFC2000(Baltimore, Maryland, USA, 2000), paper TuJ4.



  58. T. N. Nielsen, et.al., ¡°1.6Tb/s(40¡¿40Gb/s) transmission over 4¡¿100km nonzero-dispersion fiber using hybrid Raman/Erbium-doped inline amplifiers¡±, ECOC¡¯99(Nice, France, 1999), postdeadline papers, p. 26 ? 27.



  59. H. Suzuki, et.al., ¡°25GHz-spaced, 1Tb/s(100¡¿10Gb/s) super dense-WDM transmission in the C-band over a dispersion-shifted fibre cable employing distributed Raman amplification¡±, ECOC¡¯99(Nice, France, 1999), postdeadline papers, p. 30 ? 31.




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