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Korean Chemical Engineering Research

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(1)Korean Chem. Eng. Res., Vol. 43, No. 1, February, 2005, pp. 80-84. €C Z +ÏÛ óK ô¬‡§Ë{ Ï ?Ï¿ @< £¿ ´|§ Y2O3:Eu <\ÿ. ¿X· <? §\S* <oM**. ,†. KhdHõgò dHéz ¬MQ K g ߟ 100 õ§¬HG dHê ŠÖQ Ьég UôŸ 134 Qh¬HG dHàHê ŠÖQ ,g dŠŸ 1 ¸ ö ³ [¤, 2004¸ 10ö 27³ >). 305-600 * 120-749 ** 143-701 (2004 7 16. Y2O3:Eu Phosphor Particles Prepared by Spray Pyrolysis from Solution Containing Flux and Polymeric Precursor Chang Hee Lee, Kyeong Youl Jung, Joong Gill Choi* and Yun Chan Kang**,† Advanced Materials Division, Korea Research Institute of Chemical Technology, 100, Jang-dong, Yuseong-gu, Daejeon 305-600, Korea *Department of Chemistry, Yonsei University, 134, Sinchon-dong, Seodaemun-gu, Seoul 120-749, Korea **Department of Chemical Engineering, Konkuk University, 1, Hwayang-dong, Gwangjin-gu, Seoul 143-701, Korea (Received 16 July 2004; accepted 27 October 2004). ß È. ð{² ~å ù~g à_Ñ ‹g ÷ô ¿,‹ Y O :Eu   ~SËs Y GŒ. Ê~É MgQ af³ Ä æ´, -D !« ÷ô ¿,‹ Y O :Eu  ‹ = Ú è U Ñ Âj2 Ñ ¬g Æ GŒ. Ê~É MgQ afõ ŸQÑ Ä|s ) ~å ù~g à_Ñ ‹g fÆê g‹ K«¿· ¿,‹ ~SËo Ê5‹ áù s- ê_ъ ÷ô ¿,‹ ~S³ MhæÉŒ. Y O :Eu  ‹ Uè ¿,2 ~åÄUÑ ƒÍæ´(2 Ê~É M gQ af¯ -D !‹ ƒÍ

(2) Ú ~å ù~g à_‹ ä, 5‰Ñ Qo s çIŒ. Ê ‰‹ Ê~É M gõ WKK ~åÄUk³z Ê5‹ ä,ъ Y æÊ 1,000 C « ъ áùs-K ÷ô¿, Y O :Eu ~S Ëo ,àɎŽ Gъ âo è U s ÷Ék, Ê à_Ñ ‹g Y ê ċ Y O :Eu  Q 97K è §,õ ͛Œ. 2. 2. 3. 2. 3. 3. o. 2. 2. 3. 3. Abstract − Nano-sized Y2O3:Eu phosphor particles were prepared by ultrasonic spray pyrolysis. The effect of polymeric precursor and lithium carbonate flux on the morphology and luminescence characteristics of nano-sized Y2O3:Eu phosphor particles was investigated. When using the spray solution containing both the polymeric precursor and the flux, the Y2O3:Eu particles with spherical shape and micron size were turned into nano-sized Y2O3:Eu phosphor particles during the post-treatment at high temperature. The mean size of Y2O3:Eu phosphor particles was affected by the contents of polymeric precursors and lithium carbonate flux, and preparation temperature. The as-prepared particles by spray pyrolysis at high temperature from solution containing high contents of polymeric precursors had good photoluminescence intensity under vacuum ultraviolet after post-treatment above 1,000 oC. The prepared nano-sized Y2O3:Eu phosphor particles had comparable photoluminescence intensity under vacuum ultraviolet light with that of the commercial Y2O3:Eu phosphor particles prepared by solid state reaction method. Key words: Phosphor, Spray Pyrolysis, Nano Particles, Display. 1.. C «. 0s ³2Œ.  ‹ Äp.2 æé, )ñS«, ‹0DD Ù k³ ŒŠG, Î΋ Äs KŒ г Œñ ñD Ñw(òs. ÄGD AéÑ ®gæ2  ‹ U ‰ г ŒíŒ. )ñS« z~Ñ À´Š2 MÑ U_)ñS«(LCD), ñ¶ K)ñS «(PDP), K/åD Mªè )ñS«(EL), Mªö•)ñS« (FED)ً ŒŠK f\Ë« г  ÿG

(3) Š Î΋ )ñS«Ñ.  º ŒŠK =‹ Ñw(õ ¤Gñ  ɐ í0« Í( 2 ÊKK Ñw( ó«Ñ ‹g ÍQ Ž‹ Ñw(³ MhQÿ2 í † To. whom correspondence should be addressed. E-mail: [email protected]. 80.

(4) af Ú Ê~É SÍ ÄUk³z Y K Y O :Eu  Z. 81. 2 3. ¬K Êd0d  ÿ« [dæÊ ÀŒ. !¶Š d0s «D .g Î΋ )ñS«Ñ Äæ´(2  Ñ ¬K  D  « ® gæ´(Ê ÀŒ[1-8].   Y D¬Ñ À´Š2 )ñS«‹ Êd0dÑ ¬GD .g Êè A‰ O 4n¶   ~S ‹ ¿D Ú = ً U s íŽGD .K Y  D¬‹ íèÑ ðY« b´† ÀŒ.  ³Š, é Q¶O¯ ñ¶ K ) ñS«Ñ ³äJk³ Äæ´(Ê À2  2 3ъ 5 K« ¿· ¿Dõ Í( W g‹ =õ Í((O, Êd0d ” s .gŠ2  Í ‰¯æ2 ¯‹ gÆÍ DÊ )T¶½ gÆÑ Š

(5) Ï ÞÛg(Ê Â§dæ´(D AéÑ ÝŒ è³K g  ‹   íè« ®gæ´(Ê ÀŒ. = +

(6) ъ2   ~S « g‹ è³K  s ͆t jÊK  L ً U s » s ¤ À´ )ñS«Ñ JÄæÉs A âo U s ÷Œ.   ~S‹ =Q

(7) ‚´ ¿D Ú ¿D ~¯‰  ‹  ÄÑ À´Š O®K ¡¤³ ÊÄGÊ ÀŒ. )ñS«Ñ À´Š   ~S‹ ¿DÍ Â§g(

(8) ݌ Ê jÊK ÊÁS‹  L s »s ¤ À´ )ñS«‹  Ds  Qÿ2) DñO ¤ À Œ. ŠÉÁêÑ ‹g ½É‹ ¿DÍ ¤ ÷ô ¿Dõ Í(

(9)  ‹ è U « Τg,Œ2 ³z øé‰ è,æÉ(O, ³ä J¯   Y  à_Gъ2  ‹ ¿DÍ K«¿·ÑŠ ÷ ô³ Ê40¤´ è U « IGêŒÊ Q« ÝÊæ´ ÀŒ. !¶Š Yf )ñS«Ñ‹ JÄs .gŠ è A‰Í ΤG

(10) Š âo  L   U s Í(2 ¤ ÷ô ¿D‹ §  ‹ íèÑ ¬g Qo î[s Í(Ê ÀŒ. ¤ ÷ô ¿D ‹   Y Ñ2 ?³ U à_« Q« õgæ´(Ê ÀŒ[5-10]. ³äJk³ U à_Gъ2 Y  à_ f´Ñ ‹g ¤] ÷ô ъ ¤ ÷ô b( ¿D f´Í ÍDGD AéÑ Â§ K  ‹ Y « ÍDGŒ. G(O, U à_Ñ ‹g »´(2 Mg ~SËo Ê è A‰õ »D .g Ê5ъ áùs- à _s M°t KŒ. «6K Ê5‹ áùs- à_Gъ2 §K Mg ~Sˋ ’_  ß« ³´÷ ½ÉË Ñ‹ 4« Q« ³´ûŒ. !¶Š U à_Ñ ‹g Y æ2 ¬z~‹   ~ SËo §K ¿Dõ Í((O [K 4ê =õ Í(D Aé Ñ Yf JÄs .gŠ2 ÊC à_s M°t KŒ. W4 ‹  õ »D .K ÊC à_Gъ2  ‹ ,

(11) « ³´ ÷D AéÑ ÊC Ñw(‹ §DÍ ÍGM÷ ÊC QÑ« Í Gj æ

(12) »´(2  ‹ è A‰Í I¾ ©´(j êŒ. !¶Š U à_Ñ ‹K ÷ô   Y Ñ À´Š2 Ê5GÑ Š‹ ùs- ªÑŠ ½ÉË Ñ‹ 4s MdQÿ2 Y D¬ ‹ íè« 1®GŒ. ~å ù~grъ2 UJ‹ ¿D Ú ÄU‹ ‰ ÆQs g ¤] ÷ô ¿Dъ ¤ ÷ô ¿Dõ Í(2 ð§  ‹ Y « ÍDGŒ[11-14]. , UJ‹ ¿DÍ ¤ ( ¤] ÷ ô¯ _M~å ßjQ ço UJ è@ ßjõ ÄGM÷, ~ å ÄU‹ ‰õ kÎ ‘Œ

(13) ¤] ÷ô ¿D‹   Y  « ÍDGŒ. K, D Gъ ´. _‰ ’_ s »s ¤ ÀD AéÑ á ùs- ê_ъ‰ ÷ô   ½ÉË Ñ‹ 4s M dO ¤ ÀŒ. ä

(14) Ñ «6K örÑ ‹gŠ2 @ Ñ éfÍ ÀD AéÑ ³äJk³2 UJ è@

(15) « QÊ UJ‹ ¿DÍ ¤ K«¿· ¿Dõ Í(2 ð{² ~åù~g à_« Q« õgêŒ. ð{² ~å ù~g à_ъ2 0.5 mol/l « ‹ Ê ‰ÑЉ 1. K«¿· ¿D‹   Y « ÍDGÊ, »´(2   ~SË « á ùs- ê_ъ‰ g‹  s K(GÊ 4« è@G( :2 ßYs Í(Ê ÀŒ. G(O, ð{² ~å ù~g à_Ñ ‹g 300 nm «G‹ ð§  ‹ Y Ñ2 ´sÞ« ÀŒ. á øé o ð{² ~å ù~g à_Ñ Ê~É Mg ÄUê afõ ’Y K ~å ÄUs JÄWk³ ¤ ÷ô ¿D‹ ÊÁS Y O :Eu  ‹ ¬

(16) Y Ñ îK a«Œ. «M‹ õgËÑ ‹G

(17) Ê~ É Mg ÄUo ~å ù~g à_ъ  ‹ g  s  Qÿ2 IJk³ Q« õg洛Œ[13]. ä

(18) Ñ ³äJ¯   Y à_¯ Ê à_ъ ä 5‰õ Ê è A‰õ ¬Qÿ D .g Äæ2 af2 ~å ù~g à_ъ  ‹ è A ‰õ ÍQÿD .g ĿɌ[14]. á õgъ2 Ê~É Mg Q afõ ŸQÑ ƒÍK ~åÄUs JÄWk³ ¤ ÷ô  ¿D‹ Y O :Eu  Ës Y GŒ. Ê~É Mg Ú af ‹ ƒÍ

(19) , ~å ù~g à_‹ fÆ 5‰, áùs- 5‰ Ù« ÷ ô ¿D‹ Y O :Eu  ‹ è A‰, = Ú ¿D ¡d ÙÑ Âj2 Ñ ¬g ÊûGŒ. K, Y ê ÷ô ¿D‹ Y O :Eu  Q Ê à_Ñ ‹g Y ê K«¿· ¿D‹ Y O :Eu  Q  U s г WGGŒ. 2 3. 2 3. 2 3. 2 3. 2 3. 2.. / . Ê~É Mg Ú afõ WKG2 ~åÄUk³z ~å ù~ g à_Ñ ‹g Y ê ~SËo o ’_  Ú ÂäíËÑ ‹ g è §DÍ kÎ uGŒ. !¶Š Ê5‹ áùs- à_s M°  ‹ ’_d‰õ ÍQE è §Dõ ÍQZŒ. «6K Ê 5‹ áùs- ªÑŠ ½Éˋ ’_ ß« ³´÷Ê ½ÉË Ñ ‹ 4‰ è@GD AéÑ åÊC à_s M° ~Sˋ 4 s f´GŒ. •èí0³2 Í¤Ñ j ÄgG2 «TÝ Ú K³ )ދ 0Ë(Sigma-Aldrich, 99.9%)s ÄGŒ. »´(2  ‹ Æ « Y O :Eu « 扴 «TÝê K³)ދ Mg Ës Í¤Ñ õ«Ê ñDÑ Ê~É Mg í0³Š gõ (Kanto, 99.9%)ê ќW

(20) -(Sigma-Aldrich, 98%)s ÄGÊ a f³Š Li CO (Kanto, 99.5%)s ƒÍGñ ~å ÄUs fÆŒ. gõê ќW

(21) -‹ ‰2 ÎÎ 0.1 mol/lъ 0.3 mol/l b( ÆQGÊ, af³ Q« Äæ´ A‰  Ñ ‰Þs ?2 Li CO 2 ‰õ 1 wt.%ъ 7 wt.%³ ¡dQE Y×GŒ. «TÝê K ³)Þ   ~‹  ‰2 0.5 mol/l³ K(QZŒ. «Rj fÆ ê ÄUs 1.7 MHz‹ ?²¤õ Í(2 ,ŸÉÍ 6í õ’ê ð{ ² ~åßjõ Gñ UJs è@QÿÊ ~¢ 45-‹ ÒäD õ ‚´“´ 400 Cъ 1,000 Cb( ¡dQ äDъ QÆQ ù~gQE   Mg ~Ss »ÉŒ. «Rj Gñ »o ~S o àD~.DG‹ 800 C, 900 C, 1,000 C, 1,050 C -Ê 1,150 Cъ ÎÎ 3QÑ ùs-Gñ Y O :Eu  õ Y G Œ.  ‹ U ~‹o XŽ ¡Q~‹D(X-ray diffractometer)õ «Äg ½É‹ ’_gÆQ s ~‹Gk, ½É‹ =2 ? ³ ? MÉ (SEM, scanning electron microscopy)s «Ä g ~‹GŒ.   ½É‹ è U o Kr æéõ lÄGñ 147 nm‹ ,àɎŽòъ‹ photoluminescence(PL)s +_ GŒ. 1.88 3. 2. 0.12. 3. 2. o. 3. o. o. o. o. o. o. 2 3. Korean Chem. Eng. Res., Vol. 43, No. 1, February, 2005.

(22) 82. 3.. ûG Z +{. « žö_ ùöMOLöãO÷. o 0.3 mol/l‹ gõê ќW

(23) -s WKK ~åÄU s ÄK  ÎÑ af¯ Li CO ‹ ƒÍ

(24) Ñ !¶ Y ê Y O :Eu  ‹ = U  ¡dõ ÷ a«Œ. «A ~å ù~g à_ Ñ ‹g 800 Cъ Y ê Mg ~SËs àD Oъ 1,000 C ъ 3QÑ Ÿ8  Gñ  õ Y GŒ. afõ ƒÍG( :o  ÎÑ Y ê Y O :Eu  2 Mg ~S‹ g  s K(GÊ Àk kÎ Œà ¯ =õ Í(Ê ÀŒ. «6K Y O :Eu  ‹ Œà  =2 Ê~É Mg‹  A髌. Ê~É Mgõ ƒÍG( :o ~åÄUk³z Y ê Y O :Eu  2 « kÎ [ =õ Í(j êŒ. ä

(25) Ñ Ê~É Mg õ ƒÍK ~åÄUk³z Y ê Y O :Eu  2 Fig. 1(a)Ñ Ý«2 aê ç« « ÷ =õ Í(÷ kÎ Œà ¯ U « À Œ. «sF Œà ¯ = U « À2 «K2 Ê~É MgË« ~gæ

(26) Š @D2 !  ~ê ~S« ’_dæ

(27) Š @D2  A髌. ~å ù~g à_ъ UJ Ú ~S‹ äD ъ‹ ÍQÑ« 0.6ð³ kÎ ED AéÑ KDíˋ UMK ~gÍ ³ ´÷( :2Œ. !¶Š ~å ù~g à_Ñ ‹g »´, Mg ~ SËo Qo !  ~Ës WKGÊ ÀD AéÑ +s xj ê Œ. «6K !  ~o Ê5‹ áùs- ªÑŠ ~gæ´ fM æ

(28) Š Œà ‹ Y O :Eu   ~SË« »´,Œ. K, ~å ù ~g à_Ñ ‹g Y ê ~So o ’_d‰õ äD AéÑ Ê 5ъ ’_«  ßG

(29) Š Œà ¯ ~SË« »´,Œ. ä

(30) Ñ a f‹ ƒÍ

(31) « ÍO¤´ Y O :Eu  ‹ g =Í ¶( Ê ~S‹ §dÍ «P´,Œ. af‹ ƒÍ

(32) Ñ åîGj ~å ù ~g à_Ñ ‹g Y ê Mg ~SËo H& UžK g‹  s GÊ ÀŒ. af‹ ƒÍ

(33) « Q4(2  ÎÑ ~å ù~g à _Ñ ‹g »´, Mg ~SË« Ê5ъ‹ áùs- ê_ъ Fig. 1. 2. 3. 2. 3. o. o. 2. 2. 3. 3. 2. 2 3. 2 3. 2 3. 3. g  « ‚´(Ê ~S‹ ÷ô ¿DdÍ «P´›Œ. , Ê~É Mgõ ÄK  ÎÑ è@G2 ÍÍ !  ~ê afÍ ÊÄG ñ áùs- ê_ъ è³K § ¿Dõ Í(2 Y O :Eu   Í »´›Œ. Li CO afõ 5 wt.% « ƒÍ|s A g‹  « UM¾ ¶›k §GÊ è³K ¿D ~¯õ ͛Œ. af‹ ƒÍ

(34) « 8 wt.% « ъ2 ½É‹  ß« ³´÷D QÊG 11 wt.% « ъ2 ½ÉÍ ê‰Gj  ßGŒ. Fig. 22 Ê~É Mgõ ƒÍG( :Ê afO ~åÄUÑ ƒ ÍK  ÎQ afQ Ê~É Mg³Š gõê ќW

(35) -s ÎÎ 0.1mol/l  ƒÍK  ÎÑ Y ê Y O :Eu  Ë‹ MÉ   ,Ë«Œ. Li CO af‹ ƒÍ

(36) o 5 wt.%k ~å ù ~g à_Ñ ‹g Y ê ~SËs 1,000 Cъ áùs- GŒ. af‹ ƒÍ

(37) ê Ê~É Mg‹ ƒÍ

(38) « MJdê ~åÄUk³ z Y ê Y O :Eu  (Fig. 1(c))Q WGGñ afO ƒÍG ñ fÆK  2 ‚äkK =õ Í(Ê ÀŒ. g  ‰ U ž¾ ‚´(( :Ik ’_ ß‰ ‚äkGj ³´÷ 4õ «P2 ³ó ½Éˋ ¿D ~¯Í ‚Œ. ä

(39) Ñ Ê~É Mg‹ ƒÍ

(40) « Jo  ÎÑ Y ê ~SË(Fig. 2(b))o ¿DÍ kÎ Â §K U « ÀŒ. Fig. 3o ~åÄU fÆÑ À´Š gõê ќW

(41) -‹ ‰ õ ÎÎ 0.3 mol/lk³ Ÿ³Gj ƒÍGÊ af‹ ƒÍ

(42) s ¡dQ ÿ

(43) Š Y ê Y O :Eu  Ë‹ ,àɎŽ Gъ‹ ¬J¯ è §Dõ ÷ a«Œ. ~å ù~g à_Ñ ‹g Y ê Mg  ~SËs 1,000 Cъ áùs- GŒ. DC Q0³2 è¿ DÍ 5 K«¿·¯ Ê à_Ñ ‹g Y ê ċ Y O :Eu  õ ÄGk, Ä  ‹ è §Dõ 100k³ |s A‹ ¬J¯ è §Dõ Fig. 3Ñ ÷Ɍ. af¯ Li CO ‹ ƒÍ

(44) « ÍWÑ !¶ è §D2 Í|k, ƒÍ

(45) « 8 wt.%ъ M¬às ͛Œ. M¬ è §D2 Ä  ‹ 123%Œ. af 2 3. 2. 3. 2 3. 2. o. 2. 3. 2. 3. o. Fig. 1. SEM photographs of Y2O3:Eu phosphor particles containing various amounts of Li2CO3.. Ÿ¤@¤ C43× C1ƒ 2005 2. 3. 2. 2. 3. 3.

(46) af Ú Ê~É SÍ ÄUk³z Y K Y O :Eu  Z. 83. 2 3. Fig. 4. Photoluminescence spectra of the particles prepared from solutions containing various amounts of organic additives.. af‹ ƒÍ

(47) « 5 wt.% « ъ ‹¾ ÍGŒ. !¶Š ~å ù~g à_Ñ ‹g ¤ ÷ô ¿D‹ ð§ Y O :Eu   õ »D .gŠ2 af‹ ƒÍ

(48) « 5wt.% «G«´t KŒ. áùs - 5‰Í 1,000 Cъ af‹ ƒÍ

(49) « 5wt.%³ A »´,  (Fig. 1(d))2 ¤ ÷ô‹ ¿Dõ Í(

(50) Š K«¿· ¿D‹ Ä  Q K K è §DÍ ÀŒ. ~å ù~g à_Ñ ‹g Y æ´(2 Y O :Eu  ‹ = U s f´GD .g ~åÄUÑ ƒÍæ´(2 Ê~É Mg‹. ‰Í  ‹ è U Ñ Âj2 s Fig. 4Ñ ÷Ɍ. Ê~É Mgõ ƒÍG( :o  ÎÑ Y ê Y O :Eu  Í Íß o è §Dõ Í(Ê ÀŒ. K, Ê~É Mg³ Äæ ´, gõê ќW

(51) -‹ ‰Í ÎÎ 0.1 M¯  ÎÑ Y ê  ÝŒ 0.3 mol/l³ Ê ‰¯  ÎÑ Y ê  ‹ è §DÍ âIŒ. ~åÄU‹ ÜÍÑ !¶ Y ê Y O :Eu  ‹ è § DÍ ¡dG2 «K2 Î΋  ÎÑ Y æ´(2  ‹ ¿D Í Š³ ŒíD A髌. Ê~É Mgõ ƒÍG( :Ê afO s WKK ~åÄUk³z Y ê  2 Ê5‹ áùs-  ªÑŠ af ÁêÑ ‹g ½É  ß« Q« ³´÷D AéÑ Íß o è §Dõ Í,Œ. ä

(52) Ñ Ê~É Mg³ Äæ´, gõ ê ќW

(53) -‹ ƒÍ

(54) « ÎÎ 0.1 mol/l³ o  ÎÑ Y  ê  2 gõê ќW

(55) -‹ ƒÍ

(56) « ÎÎ 0.3 mol/l ³ A Y ê  ÝŒ §GD AéÑ ÝŒ uK è §Dõ Í ,Œ. gõê ќW

(57) -‹ ‰Í ÎÎ 0.1 M³ o  ÎÑ ~å ù~g à_Ñ ‹g Y ê Mg ~SËo kÎ « [  =õ Í,Œ. «6K « [ =‹ ~SËs Ê5ъ áùsê_s M° »´(2   ~SËo kΠ§K ¿D‹ ³ó ½É˳ «P´(j êŒ. ä

(58) Ñ Ê ‰‹ gõ Ú ÑœW

(59) « ƒÍê ~åÄUk³z Y ê Mg ~SËo « ÷  =õ Í(D AéÑ Ê5‹ ùs- áÑ »´(2 ~Sˋ ³ó½ ÉÍ (j êŒ. , ¤ K«¿· ¿D‹ Ä Y O :Eu  Q K K è §Dõ Í(

(60) Š ¤ ÷ô ¿D‹ ð§ ¿D‹  õ Y GD .gŠ2 af¯ Li CO ‹ ƒÍ

(61) « 5 wt.%« Ê, Ê~É Mg¯ gõê ќW

(62) -‹ ƒÍ

(63) « H& 0.3 M ³ AÍ JQGŒ. Fig. 52 ~å ù~g à_‹ fÆ 5‰Í Y ê Y O :Eu  2. 3. o. 2. Fig. 2. SEM photographs of Y2O3:Eu phosphor particles prepared from solutions containing various amounts of organic additives.. Fig. 3. Photoluminescence intensities of the particles prepared from solutions containing various Li2CO3 content and post-treated at 1,000 oC.. ‹ ƒÍ

(64) Ñ !¶ è §DÍ ‹¾ ¡G2 «K2 Y ê Y O :Eu  ‹ ½É ¿DÍ ¡GD A髌. af‹ ƒÍ

(65) Ñ !¶ Y  ê Y O :Eu  ‹ ½É ¿D2 ‹Gj ÍGk, U¾ 2. 2 3. 3. 3. 2. 3. 2. 3. 2 3. 2. 3. 2 3. Korean Chem. Eng. Res., Vol. 43, No. 1, February, 2005.

(66) « žö_ ùöMOLöãO÷. 84. afõ ŸQÑ WKG2 ~åÄUk³z ~å ù~g à_Ñ ‹ g ÊA‰‹ ÷ô  õ Y G2 à_o ŒŠK ÷ô  ‹ Y Ñ lÄî a«Œ.. ƒ+S. Fig. 5. Photoluminescence spectra of Y2O3:Eu phosphor particles asprepared at various temperatures and post-treated at 1,150 oC for 3 h.. ‹ è U Ñ Âj2 s ÷Œ. ~åÄUъ gõê ќW

(67) -‹ ‰2 ÎÎ 0.3 M«Ék, af‹ ƒÍ

(68) o 5 wt.%«ÉŒ. Î΋ äD 5‰ÑŠ ~å ù~g à_Ñ ‹g Y  ê Mg ~SËs 1,000 Cъ 3QÑ áùs- Gñ ,àÉ ŽŽ Gъ‹ è U s WGGŒ. ~å ù~g à_‹ äD 5‰Í 600 Cъ 1,000 C³ ÍO A »´, Y O :Eu   ‹ è §D‰ ÍGŒ. Y O :Eu  ‹ è §DÍ ~å ù~g à_‹ äD 5‰Í ÍWÑ !¶ ÍG2 «K2   ½É‹  ß A髌. I5‹ ~å ù~g à_Ñ ‹g Y ê Mg ~SËo ~S zÑ Â ä‹ !  ~Ës Q« WK Gj êŒ. «6K !  ~Ë« Ê5‹ ùs- ê_ъ Y O :Eu  ‹ ’_  ßs ögGj êŒ. ä

(69) Ñ Ê5‹ ~å ù~g à_Ñ ‹g Y ê ~SËo Â䁋 !  ~Ës WGJ Jj WKGÊ ÀD AéÑ Ê5‹ ùs- ê_ъ ’_  ß« ³´÷  ‹ è §DÍ ÍGj êŒ. o. o. o. 2 3. 2. 3. 2. 4.. 3. û «. W 4 ‹ ÷ô Y O :Eu   Y s .g ~å ù~g à _Ñ lÄæ´(2 ~åÄUÑ Ê~É MgQ afõ ŸQÑ J ÄGŒ. Ê~É MgQ afõ H& WKG2 ~åÄUk³z  ~å ù~g à_Ñ ‹g Y æ´(2 Mg ~SËo g‹  s Í(

(70) Š K«¿· ¿Dõ ä2Œ. ä

(71) Ñ ~å ù~g à _‹ Eo ÍQÑk³ ¯g »´(2 Mg ~SË zÑ Qo Š‹ !  ~Ë« ÍÍGj êŒ. «6K !  ~Ëo Ê5‹ áùs- ê_ъ ~gæ

(72) Š Œà ‹ ~SËs ðÖGj êŒ. «6K ÍÍ !  ~ê afÍ ŸQÑ ÊÄGñ ~å ù~g à _Ñ ‹g Y ê Mg ~SË« Ê5‹ áùs- ê_ъ ~g Í ³´÷ ÷ô ~Sdõ ñ,GŒ. ~å ù~g à_Ñ ‹g Y  æ´(2 ÷ô Y O :Eu  2 Ê5‹ áùs- ê_ъ ~ S‹ ÷ô ¿DdÍ «P´(D AéÑ ÊA‰õ Í(

(73) Љ ÷ô ~SË Ñ‹ 4« uGj «P´† ÀŒ. «6K ÷ô 42 åÊC à_Ñ ‹g j ~GÍ «P´›k, ,

(74) Ñ ‹K è A‰ ÝÍ Q« ³´÷( :IŒ. !¶Š Ê~É MgQ 2 3. 2 3. Ÿ¤@¤ C43× C1ƒ 2005 2. 1. Yamamoto, H., “CRT Phosphors and Application to FED Phosphors,” J. SID., 4(3), 165(1996). 2. Sievers, R. E., Milewski, P. D., Xu, C. Y. and Watkins, B. A., “High-Entensity Cathodoluminescence from Sub-Micron Spherical Particles Synthesized by CO2-Assisted Aerosolization,” Ext. Abst. 3rd Int 1 Conf. Sci. & Tech. Display Phosphors, pp. 303, Humtington Beach, CA(1997). 3. Jiang, Y. D., Wang, Z. L., Zhang, F., Paris, H. P. and Summers, C. J., “The Effect of Particle Size on the Luminescence Properties of Y2O3:Eu,” Ext. Abst. 3rd Int 1 Conf. Sci. & Tech. Display Phosphors, pp. 261, Huntington Beach, CA(1997). 4. Park, J. C., Moon, H. K., Kim, D. K., Byeon, S. H., Kim, B. C. and Suh, K. S., “Morphology and Cathodoluminescence of Lidoped Gd2O3:Eu3+, A Red Phosphor Operating at Low Voltages,” Appl. Phys. Lett., 77, 2162-2164(2000). 5. Rao, R. P., “Preparation and Characterization of Fine-Grain Yttrium-Based Phosphors by Sol-Gel Process,” J. Electrochem. Soc., 143, 189-196(1996). 6. Pan, Y., Su, Q., Xu, H., Chen, T., Ge, W., Yang, C. and Wu, M., “Synthesis and Red Luminescence of Pr3+-doped CaTiO3 Nanophosphor from Polymer Precursor,” J. Solid State Chem., 174(1), 69-73(2003). 7. Oing, S., Barthou, C., Denis, J. P., Pelle, F. and Blanzat, B., “Luminescence and Energy Transfer in Y2O3 CO-doped with Bi3+ and Eu3+”, J. Lumin., 28(1), 1-11(1983). 8. Villalobos, G., Leclerq, O., Paris, H. and Summers, C. J., “Controlling the Size and Shape of Co-Precipitated Y2O3:Eu Phosphors,” Ext. Abs. 3rd Int 1 Conf. Sci. & Tech. Display Phosphors, pp. 253, Huntington Beach, CA(1997). 9. Bihari, B., Eilers, H. and Tissue, B. M., “Spectra and Dynamics of Monoclinic Eu2O3 and Eu3+: Y2O3 Nanocrystals,” J. Lumin., 75(1), 1-10(1997). 10. Xu, C., Wakins, B. A., Sievers, R. E., Jing, X., Trowga, P., Gibbons, C. S. and Vecht, A., “Spectra and Dynamics of Monoclinic Eu2O3 and Eu3+:Y2O3 Nanocrystals,” Appl. Phys. Lett., 71, 1643-1645(1997). 11. Roh, H. S., Kim, E. J., Kang, H. S., Kang, Y. C., Park, H. D. and Park, S. B., “Vacuum Ultraviolet Characteristics of Nano-sized Gd2O3:Eu Phosphor Particles,” Jpn. J. Appl. Phys., 42(5A), 27412745(2003). 12. Kang, Y. C., Roh, H. S. and Park, S. B., “Preparation of Y2O3:Eu Phosphor Particles of Filled Morphology at High Precursor Concentrations by Spray Pyrolysis,” Adv. Mat., 12(6), 451-453(2000). 13. Kim, E. J., Kang, Y. C., Park, H. D. and Ryu, S. K., “UV and VUV Characteristics of (YGd)2O3:Eu Phosphor Particles Prepared by Spray Pyrolysis from Polymeric Precursors,” Mater. Res. Bull., 38, 515-524(2003). 14. Kang, Y. C., Roh, H. S. and Park, S. B., “Use of LiCl Flux in the Preparation of Y2O3:Eu Phosphor Particles by Spray Pyrolysis,” J. Eur. Ceram. Soc., 22, 1661-1665(2002)..

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