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Photoacoustic Imaging
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¹ßÇàÀÏ : 2025³â 08¿ù
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2024³â¿¡ 1¾ï 2,690¸¸ ´Þ·¯·Î ÃßÁ¤µÇ´Â ±¤À½Çâ ¿µ»ó ¼¼°è ½ÃÀåÀº ºÐ¼® ±â°£ÀÎ 2024-2030³â¿¡ CAGR 21.1%·Î ¼ºÀåÇÏ¿© 2030³â¿¡´Â 4¾ï 80¸¸ ´Þ·¯¿¡ ´ÞÇÒ °ÍÀ¸·Î ¿¹ÃøµË´Ï´Ù. ÀÌ º¸°í¼­¿¡¼­ ºÐ¼®ÇÑ ºÎ¹® Áß ÇϳªÀÎ ±¤À½Çâ Åä¸ð±×·¡ÇÇ´Â CAGR 22.9%¸¦ ±â·ÏÇÏ¸ç ºÐ¼® ±â°£ Á¾·á½Ã¿¡´Â 2¾ï 8,970¸¸ ´Þ·¯¿¡ ´ÞÇÒ °ÍÀ¸·Î ¿¹ÃøµË´Ï´Ù. ±¤À½Çâ Çö¹Ì°æ ºÐ¾ßÀÇ ¼ºÀå·üÀº ºÐ¼® ±â°£ µ¿¾È CAGR 17.3%·Î ÃßÁ¤µË´Ï´Ù.

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¹Ì±¹ÀÇ ±¤À½Çâ ¿µ»ó ½ÃÀåÀº 2024³â¿¡ 3,340¸¸ ´Þ·¯·Î ÃßÁ¤µË´Ï´Ù. ¼¼°è 2À§ °æÁ¦ ´ë±¹ÀÎ Áß±¹Àº 2030³â±îÁö 6,110¸¸ ´Þ·¯ÀÇ ½ÃÀå ±Ô¸ð¿¡ ´ÞÇÒ °ÍÀ¸·Î ¿¹ÃøµÇ¸ç, ºÐ¼® ±â°£ÀÎ 2024-2030³â CAGRÀº 19.9%¸¦ ±â·ÏÇÒ °ÍÀ¸·Î ¿¹»óµË´Ï´Ù. ±âŸ ÁÖ¸ñÇÒ ¸¸ÇÑ Áö¿ªº° ½ÃÀåÀ¸·Î´Â ÀϺ»°ú ij³ª´Ù°¡ ÀÖ°í, ºÐ¼® ±â°£ µ¿¾È CAGRÀº °¢°¢ 19.7%¿Í 18.1%·Î ¿¹ÃøµË´Ï´Ù. À¯·´¿¡¼­´Â µ¶ÀÏÀÌ CAGR ¾à 15.3%·Î ¼ºÀåÇÒ °ÍÀ¸·Î ¿¹ÃøµË´Ï´Ù.

±¤À½Çâ ¿µ»ó ½ÃÀå : ÁÖ¿ä µ¿Çâ°ú ÃËÁø¿äÀÎ Á¤¸®

±¤À½Çâ ¿µ»óÀº ÀÇ·á ¹× »ê¾÷¿ë ¿µ»ó 󸮿¡ ¾î¶² Çõ¸íÀ» °¡Á®¿Ã °ÍÀΰ¡?

±¤À½Çâ ¿µ»ó(PAI)Àº ·¹ÀÌÀú À¯µµÃÊÀ½ÆÄ¿Í ±¤ÇÐ À̹Ì¡À» °áÇÕÇÑ Ã·´Ü ÇÏÀ̺긮µå À̹Ì¡ ±â¼ú·Î, »ýü ±¸Á¶ÀÇ °íÇØ»óµµ, ½ÉºÎÁ¶Á÷ÀÇ ½Ã°¢È­¸¦ °¡´ÉÇÏ°Ô ÇÕ´Ï´Ù. ÀÌ ±â¼úÀº ±¤À½Çâ È¿°ú¸¦ ÀÌ¿ëÇÑ °ÍÀ¸·Î, ÆÞ½º ·¹ÀÌÀú ºûÀÌ »ýü Á¶Á÷¿¡ Èí¼öµÇ¸é¼­ À½ÆÄ°¡ ¹ß»ýÇÏ¿© À̸¦ °¨ÁöÇÏ¿© °í´ëºñ ¿µ»óÀ» ±¸ÃàÇÏ´Â ±â¼úÀÔ´Ï´Ù. ºû »ê¶õÀÇ Á¦ÇÑÀ» ¹Þ´Â ±âÁ¸ ±¤ÇÐ À̹Ì¡ ¹æ¹ý°ú ´Þ¸®, PAI´Â ±¤ÇÐ ´ëºñÀÇ ÀåÁ¡À» À¯ÁöÇϸ鼭 °ø°£ ÇØ»óµµ¸¦ Çâ»ó½ÃŰ°í ±íÀº Á¶Á÷ ħÅõ¸¦ ½ÇÇöÇÕ´Ï´Ù.

PAI´Â »ýÀÇÇÐ ¿¬±¸, Á¾¾çÇÐ, ½ÉÇ÷°ü ¿µ»ó, ½Å°æ°úÇÐ, ÇǺΰúÇÐ, ºÐÀÚ ¿µ»ó µîÀÇ ºÐ¾ß¿¡¼­ ³Î¸® äÅõǰí ÀÖ½À´Ï´Ù. ÀÌ¿ÂÈ­ ¹æ»ç¼±À» ÇÊ¿ä·Î ÇÏÁö ¾Ê°í ±â´ÉÀû, ±¸Á¶Àû, ºÐÀÚÀû ÀλçÀÌÆ®¸¦ Á¦°øÇÏ´Â ´É·ÂÀº MRI, CT, ÃÊÀ½ÆÄ µî ±âÁ¸ À̹Ì¡ ¾ç½Ä¿¡ ´ëÇÑ ¸Å·ÂÀûÀÎ ´ë¾ÈÀÌ µÉ ¼ö ÀÖ½À´Ï´Ù. ¶ÇÇÑ, ·¹ÀÌÀú ±â¼ú, ½Ç½Ã°£ ¿µ»ó ó¸®, AI¸¦ ÅëÇÑ À̹ÌÁö À籸¼ºÀÇ ¹ßÀüÀº PAIÀÇ ÀÓ»ó ÇöÀå ÅëÇÕÀ» ÃËÁøÇϰí, Áúº´ÀÇ Á¶±â ¹ß°ß, ¼ö¼ú Áß ¿µ»ó Áø´Ü, ¸ÂÃãÇü ÀÇ·á¿¡ ´ëÇÑ È°¿ëÀ» È®´ëÇϰí ÀÖ½À´Ï´Ù.

±¤À½Çâ ¿µ»ó ½ÃÀåÀ» Çü¼ºÇÏ´Â ÁÖ¿ä µ¿ÇâÀº?

±¤À½Çâ ¿µ»ó ½ÃÀåÀº ±â¼ú Çõ½Å, »ý¹° ÀÇÇÐ ÀÀ¿ë ºÐ¾ß Áõ°¡, ºñħ½ÀÀû Áø´Ü µµ±¸¿¡ ´ëÇÑ ¼ö¿ä Áõ°¡·Î ÀÎÇØ ºü¸£°Ô ÁøÈ­Çϰí ÀÖ½À´Ï´Ù. ¸î °¡Áö »õ·Î¿î Æ®·»µå°¡ ÀÌ À̹Ì¡ ¾ç½ÄÀÇ Ã¤Åðú »ó¿ëÈ­¸¦ Çü¼ºÇϰí ÀÖ½À´Ï´Ù.

°¡Àå Áß¿äÇÑ Æ®·»µå Áß Çϳª´Â PAIÀÇ ÀΰøÁö´É(AI)°ú ¸Ó½Å·¯´×ÀÇ ÅëÇÕÀÔ´Ï´Ù. AI ±â¹Ý ¾Ë°í¸®ÁòÀº À̹ÌÁö À籸¼º, ¼¼ºÐÈ­, ÆÇµ¶À» °­È­Çϰí, ½Ç½Ã°£ À̹Ì¡À» °¡´ÉÇÏ°Ô Çϸç, Áø´Ü Á¤È®µµ¸¦ Çâ»ó½Ãŵ´Ï´Ù. ÀÌ·¯ÇÑ ¹ßÀüÀº ƯÈ÷ Á¾¾çÇп¡¼­ À¯¿ëÇϸç, AI°¡ Áö¿øÇÏ´Â ±¤À½Çâ ¿µ»óÀº Á¾¾ç ´ÜÀý, Àú»ê¼Ò ¿µ¿ª, Ç÷°ü ½Å»ý ÆÐÅÏÀ» º¸´Ù Á¤È®ÇÏ°Ô °¨ÁöÇÏ´Â µ¥ µµ¿òÀÌ µË´Ï´Ù.

¶Ç ´Ù¸¥ ÁÖ¿ä Æ®·»µå´Â ÈÞ´ë¿ë ¹× ¿þ¾î·¯ºí ±¤À½Çâ ¿µ»ó ÀåÄ¡ÀÇ °³¹ßÀÔ´Ï´Ù. ±âÁ¸ÀÇ À̹Ì¡ ½Ã½ºÅÛÀº ºÎÇǰ¡ Å©°í °í°¡ÀÎ °æ¿ì°¡ ¸¹¾Æ Ȱ¿ëµµ°¡ Á¦ÇÑÀûÀ̾ú½À´Ï´Ù. ±×·¯³ª ÃÖ±Ù ¼ÒÇüÈ­µÈ ·¹ÀÌÀú ±¤¿ø, °í°¨µµ ÃÊÀ½ÆÄ °ËÃâ±â, À¯¿¬ÇÑ À̹Ì¡ ÇÁ·Îºê µîÀÇ ±â¼ú Çõ½ÅÀ¸·Î ÀÎÇØ POC(Point of Care) ¹× ¿þ¾î·¯ºí PAI ¼Ö·ç¼ÇÀÇ ±æÀÌ ¿­¸®°í ÀÖ½À´Ï´Ù. ÀÌ·¯ÇÑ ÈÞ´ë¿ë ±â±â´Â ƯÈ÷ ÇǺΰú, »óó Ä¡À¯ Æò°¡, ±Ù°ñ°Ý°è ¿µ»ó µî ½Ç½Ã°£ Áø´Ü¿¡ Çõ¸íÀ» ÀÏÀ¸Å³ ¼ö ÀÖ´Â ÀáÀç·ÂÀ» °¡Áö°í ÀÖ½À´Ï´Ù.

±¤À½Çâ ºÐÀÚ À̹Ì¡ÀÇ È®´ëµµ Çõ½ÅÀûÀÎ Ãß¼¼ÀÔ´Ï´Ù. Ç¥ÀûÈ­µÈ Á¶¿µÁ¦³ª ³ª³ëÀÔÀÚ¸¦ ÀÌ¿ëÇÏ¿© PAI´Â ¹ÙÀÌ¿À¸¶Ä¿, ´ë»ç º¯È­, ¾à¹° »óÈ£ÀÛ¿ëÀ» ºÐÀÚ ¼öÁØ¿¡¼­ °¡½ÃÈ­ÇÒ ¼ö ÀÖ½À´Ï´Ù. ÀÌ´Â ¸ÂÃãÇü ÀÇ·á, ÀǾàǰ °³¹ß, Å×¶ó³ë½ºÆ½½º(Ä¡·á¿Í Áø´ÜÀÇ º´¿ë)¿¡ Áß¿äÇÑ Àǹ̸¦ °¡Áý´Ï´Ù. ±¤À½Çâ ³ª³ëÇÁ·Îºê, ±Ý ³ª³ëºÀ, À¯±â»ö¼Ò Á¶»ç¸¦ ÅëÇØ ¾Ï¼¼Æ÷, µ¿¸Æ°æÈ­ ÇöóÅ©, ½Å°æÅðÇ༺ Áúȯ ¸¶Ä¿¸¦ Àü·Ê ¾ø´Â ¹Î°¨µµ·Î °ËÃâÇÒ ¼ö ÀÖ°Ô µÇ¾ú½À´Ï´Ù.

¶ÇÇÑ, ±¤À½Çâ°ú MRI, CT, Çü±¤ À̹Ì¡°ú °°Àº ´Ù¸¥ ¿µ»ó±â¹ýÀ» °áÇÕÇÑ ÇÏÀ̺긮µå À̹Ì¡ ½Ã½ºÅÛÀÌ º¸±ÞµÇ°í ÀÖ½À´Ï´Ù. ÀÌ·¯ÇÑ ¸ÖƼ¸ð´Þ Á¢±Ù¹ýÀº º¸¿ÏÀûÀÎ Á¤º¸¸¦ Á¦°øÇϰí, Áø´Ü Á¤È®µµ¸¦ Çâ»ó½Ã۸ç, Á¾ÇÕÀûÀÎ ±â´ÉÀû ¹× ÇØºÎÇÐÀû ÀλçÀÌÆ®¸¦ Á¦°øÇÕ´Ï´Ù. ¿¹¸¦ µé¾î, ÇÏÀ̺긮µå PAI-ÃÊÀ½ÆÄ ½Ã½ºÅÛÀº À¯¹æ¾Ï °¨Áö ¹× ½Ç½Ã°£ Ç÷°ü À̹Ì¡À» À§ÇØ °³¹ßµÇ¾î ±¤À½Çâ ¿µ»óÀÇ ÀÓ»óÀû À¯¿ë¼ºÀ» ´õ¿í È®ÀåÇϰí ÀÖ½À´Ï´Ù.

±¤À½Çâ ¿µ»óÀÇ ÃÖÁ¾ ¿ëµµ´Â ¾î¶»°Ô ±¤À½Çâ ¿µ»óÀÇ Ã¤ÅÃÀ» ÃËÁøÇϰí Àִ°¡?

±¤À½Çâ ¿µ»óÀº ºñħ½ÀÀû, °íÇØ»óµµ, ½Ç½Ã°£ À̹Ì¡ ±â´ÉÀ» Á¦°øÇϸç, ´Ù¾çÇÑ ÀÇ·á ¹× »ê¾÷ ÀÀ¿ë ºÐ¾ß¿¡¼­ Ȱ¿ëµÇ°í ÀÖ½À´Ï´Ù. ±× ¿µÇâÀº ƯÈ÷ ±âÁ¸ À̹Ì¡ ¹æ¹ýÀ¸·Î´Â ÇѰ谡 ÀÖ¾ú´ø Á¾¾çÇÐ, ½ÉÇ÷°ü ¿µ»ó, ½Å°æ°úÇÐ, ÇǺΰúÇÐ, ¾È°úÇÐ ºÐ¾ß¿¡¼­ µÎµå·¯Áö°Ô ³ªÅ¸³ª°í ÀÖ½À´Ï´Ù.

Á¾¾çÇп¡¼­ PAI´Â Á¾¾çÀÇ °ËÃâ, º´±â ºÐ·ù, Ä¡·á ¸ð´ÏÅ͸µ¿¡ »ç¿ëµË´Ï´Ù. PAI´Â Á¾¾çÀÇ ±â´ÉÀû, ºÐÀÚÀû À̹Ì¡À» Á¦°øÇÏ¿© ¾ÏÀÇ Á¶±â ¹ß°ß°ú Á¾¾çÀÇ Àú»ê¼Ò »óÅ ¹× Ç÷°ü ½Å»ý¿¡ ´ëÇÑ ½Ç½Ã°£ Æò°¡¸¦ °¡´ÉÇÏ°Ô ÇÕ´Ï´Ù. ±âÁ¸ ¿µ»ó¹ý°ú ´Þ¸® ±¤À½ÇâÀº Çì¸ð±Û·Îºó ³óµµ¿Í »ê¼ÒÆ÷È­µµ¸¦ ¶óº§ ¾øÀÌ ¿µ»óÈ­ÇÒ ¼ö ÀÖ¾î Á¾¾çÀÇ °ø°Ý¼º ¹× Ä¡·á È¿°ú Æò°¡¿¡ µµ¿òÀ» ÁÖ°í ÀÖ½À´Ï´Ù.

½ÉÇ÷°ü À̹Ì¡µµ Áß¿äÇÑ ÀÀ¿ë ºÐ¾ßÀÔ´Ï´Ù. PAI´Â Ç÷°ü, Á׻󵿸ưæÈ­ ÇöóÅ©, ¹Ì¼¼Ç÷°ü¸ÁÀÇ °íÇØ»óµµ ½Ã°¢È­¸¦ °¡´ÉÇÏ°Ô ÇÕ´Ï´Ù. »êÈ­ ½ºÆ®·¹½º, ÁöÁú ÃàÀû, Ç÷Àü Çü¼ºÀ» °¨ÁöÇÒ ¼ö ÀÖ¾î ³úÁ¹Áß À§Çè Æò°¡ ¹× °ü»óµ¿¸ÆÁúȯ(CAD) Á¶±â ¹ß°ß¿¡ À¯¿ëÇÏ°Ô È°¿ëµÉ ¼ö ÀÖ½À´Ï´Ù. ÀÌ Á¶»ç´Â ¶ÇÇÑ ½ÉÀ庴Çп¡¼­ ±¤À½Çâ À¯µµ ÁßÀçÀÇ °¡´É¼ºÀ» ޱ¸Çϰí ÀÖÀ¸¸ç, ÃÖ¼Òħ½ÀÀû ½Ã¼ú Áß ½Ç½Ã°£ ½Ã°¢È­¸¦ °¡´ÉÇÏ°Ô Çϰí ÀÖ½À´Ï´Ù.

½Å°æ°úÇÐ ºÐ¾ß¿¡¼­ PAI´Â ³ú ¿µ»ó ¹× ½Å°æÇ÷°ü ¿¬±¸¸¦ ÃËÁøÇϰí ÀÖ½À´Ï´Ù. PAI´Â ³ú Ç÷·ù¿ªÇÐ, ½Å°æ¿°Áõ, Ç÷¾×³úÀ庮ÀÇ ¿ÏÀü¼º ¿¬±¸¿¡ »ç¿ëµÇ°í ÀÖ½À´Ï´Ù. MRI³ª CT¿Í ´Þ¸® PAI´Â Àü¸®¹æ»ç¼±À» ÂØÁö ¾Ê°íµµ ºü¸¥ ±â´ÉÀû ¿µ»óÀ» Á¦°øÇϱ⠶§¹®¿¡ ¾ËÃ÷ÇÏÀ̸Ӻ´À̳ª ÆÄŲ½¼º´°ú °°Àº ½Å°æ ÅðÇ༺ ÁúȯÀÇ Á¾´ÜÀû ¿¬±¸¿¡ ÀÌ»óÀûÀÔ´Ï´Ù. ±¤À½Çâ ³»½Ã°æÀÇ ¹ß´Þ·Î ÃÖ¼Òħ½ÀÀû ³ú ¿µ»ó ÃÔ¿µÀÌ °¡´ÉÇØÁ® ÀÓ»ó Àû¿ëÀÌ ´õ¿í È®´ëµÇ°í ÀÖ½À´Ï´Ù.

ÇǺΰúÇаú »óó Ä¡À¯ Æò°¡´Â ºü¸£°Ô ¹ßÀüÇϰí ÀÖ´Â ÀÀ¿ë ºÐ¾ßÀÔ´Ï´Ù. PAI´Â ÇǺΠº´º¯, Èæ»öÁ¾, Ç÷°ü ÀÌ»ó, È­»ó µîÀ» ½Ç½Ã°£À¸·Î ¿µ»óÈ­ÇÒ ¼ö ÀÖ½À´Ï´Ù. PAI´Â ±âÁ¸ÀÇ ´õ¸ð½ºÄÚÇÇ¿Í ´Þ¸® ÇǺÎÃþ ±íÀÌ ºÐÇØ ¿µ»óÀ» Á¦°øÇÏ¿© ÇÇºÎ¾Ï Áø´Ü ¹× Ä¡·á ¸ð´ÏÅ͸µÀÇ Á¤È®µµ¸¦ Çâ»ó½Ãŵ´Ï´Ù. ¶ÇÇÑ, ±¤À½Çâ ±â¹Ý »ê¼ÒÈ­ ¸ÅÇÎÀº »óó Ä¡À¯ ÁøÇà Á¤µµ¿Í ´ç´¢¼º ±Ë¾ç Æò°¡¿¡ »ç¿ëµÇ¾î °³Àκ° ¸ÂÃã »óó °ü¸®¸¦ °¡´ÉÇÏ°Ô ÇÕ´Ï´Ù.

¾È°ú¿¡¼­´Â PAI°¡ ¸Á¸·°ú ¸Æ¶ô¸·ÀÇ ¿µ»óÈ­¿¡ Àû¿ëµÇ°í ÀÖ½À´Ï´Ù. ¸Á¸· Ç÷°üÀÇ »ê¼ÒÆ÷È­µµ Áöµµ¸¦ Á¦°øÇÏ´Â ´É·ÂÀº ´ç´¢¸Á¸·º´Áõ, ³ì³»Àå, ³ëÀÎȲ¹Ýº¯¼º(AMD)À» °¨ÁöÇÏ´Â À¯¸ÁÇÑ µµ±¸°¡ µÇ°í ÀÖ½À´Ï´Ù. ¾È°ú ÀÇ·á¿¡¼­ ºñħ½ÀÀû À̹Ì¡ÀÇ Á߿伺ÀÌ °­Á¶µÊ¿¡ µû¶ó ±¤À½Çâ ¾ÈÀú À̹Ì¡ÀÌ ±âÁ¸ Áø´Ü µµ±¸¿¡ Ãß°¡µÇ´Â °¡Ä¡ ÀÖ´Â µµ±¸°¡ µÉ °ÍÀ¸·Î ±â´ëµÇ°í ÀÖ½À´Ï´Ù.

±¤À½Çâ ¿µ»ó ½ÃÀåÀÇ ¼ºÀåÀ» °¡¼ÓÇÏ´Â ¿äÀÎÀº ¹«¾ùÀΰ¡?

±¤À½Çâ ¿µ»ó ½ÃÀåÀÇ ¼ºÀåÀº ±â¼ú ¹ßÀü, »ý¹° ÀÇÇÐ ¿¬±¸¿¡¼­ÀÇ Ã¤Åà Áõ°¡, ºñħ½ÀÀû À̹Ì¡ ¼Ö·ç¼Ç¿¡ ´ëÇÑ ¼ö¿ä Áõ°¡ µî ¿©·¯ ¿äÀο¡ ÀÇÇØ ÁÖµµµÇ°í ÀÖ½À´Ï´Ù.

ÁÖ¿ä ¼ºÀå ¿äÀÎ Áß Çϳª´Â ¾Ï, ½ÉÇ÷°üÁúȯ, ½Å°æ ÅðÇ༺ Áúȯ µî ¸¸¼ºÁúȯÀÇ À¯º´·ü Áõ°¡ÀÔ´Ï´Ù. Á¶±â Áø´Ü°ú Ä¡·á ¸ð´ÏÅ͸µÀÌ ÇコÄɾîÀÇ ¿ì¼±¼øÀ§°¡ µÇ¸é¼­ PAI¿Í °°Àº °íÇØ»óµµ ±â´ÉÀû À̹Ì¡ ±â¼úÀÌ Ã¤Åõǰí ÀÖ½À´Ï´Ù. ¶ÇÇÑ, ºñħ½ÀÀûÀÌ°í ¹æ»ç¼±À» »ç¿ëÇÏÁö ¾Ê´Â Áø´Ü µµ±¸¿¡ ´ëÇÑ ¼ö¿äµµ ±¤À½Çâ ±â¹Ý ÀÇ·á¿ë À̹Ì¡ ¼Ö·ç¼Ç¿¡ ´ëÇÑ °ü½ÉÀ» ³ôÀ̰í ÀÖ½À´Ï´Ù.

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Global Photoacoustic Imaging Market to Reach US$400.8 Million by 2030

The global market for Photoacoustic Imaging estimated at US$126.9 Million in the year 2024, is expected to reach US$400.8 Million by 2030, growing at a CAGR of 21.1% over the analysis period 2024-2030. Photoacoustic Tomography, one of the segments analyzed in the report, is expected to record a 22.9% CAGR and reach US$289.7 Million by the end of the analysis period. Growth in the Photoacoustic Microscopy segment is estimated at 17.3% CAGR over the analysis period.

The U.S. Market is Estimated at US$33.4 Million While China is Forecast to Grow at 19.9% CAGR

The Photoacoustic Imaging market in the U.S. is estimated at US$33.4 Million in the year 2024. China, the world's second largest economy, is forecast to reach a projected market size of US$61.1 Million by the year 2030 trailing a CAGR of 19.9% over the analysis period 2024-2030. Among the other noteworthy geographic markets are Japan and Canada, each forecast to grow at a CAGR of 19.7% and 18.1% respectively over the analysis period. Within Europe, Germany is forecast to grow at approximately 15.3% CAGR.

Photoacoustic Imaging Market: Key Trends & Drivers Summarized

How Is Photoacoustic Imaging Revolutionizing Medical and Industrial Imaging?

Photoacoustic imaging (PAI) is an advanced hybrid imaging technology that combines laser-induced ultrasound with optical imaging, enabling high-resolution, deep-tissue visualization of biological structures. This technique leverages the photoacoustic effect, where pulsed laser light is absorbed by biological tissues, generating acoustic waves that are detected to construct high-contrast images. Unlike traditional optical imaging methods, which suffer from light scattering limitations, PAI provides deep tissue penetration with enhanced spatial resolution while maintaining the benefits of optical contrast.

Photoacoustic imaging is gaining widespread adoption in biomedical research, oncology, cardiovascular imaging, neuroscience, dermatology, and molecular imaging. Its ability to provide functional, structural, and molecular insights without the need for ionizing radiation makes it an attractive alternative to existing imaging modalities such as MRI, CT, and ultrasound. Additionally, advancements in laser technology, real-time imaging processing, and AI-driven image reconstruction are driving the integration of PAI into clinical settings, expanding its use in early disease detection, intraoperative imaging, and personalized medicine.

What Are the Key Trends Shaping the Photoacoustic Imaging Market?

The photoacoustic imaging market is evolving rapidly, driven by technological innovations, increasing biomedical applications, and growing demand for non-invasive diagnostic tools. Several emerging trends are shaping the adoption and commercialization of this imaging modality.

One of the most significant trends is the integration of artificial intelligence (AI) and machine learning in PAI. AI-driven algorithms enhance image reconstruction, segmentation, and interpretation, enabling real-time imaging and improving diagnostic accuracy. These advancements are particularly beneficial in oncology, where AI-assisted photoacoustic imaging can help detect tumor margins, hypoxic regions, and angiogenesis patterns more precisely.

Another key trend is the development of portable and wearable photoacoustic imaging devices. Traditional imaging systems are often bulky and expensive, limiting their accessibility. However, recent innovations in miniaturized laser sources, high-sensitivity ultrasound detectors, and flexible imaging probes are paving the way for point-of-care (POC) and wearable PAI solutions. These portable devices have the potential to revolutionize real-time diagnostics, particularly in dermatology, wound healing assessment, and musculoskeletal imaging.

The expansion of photoacoustic molecular imaging is another transformative trend. By using targeted contrast agents and nanoparticles, PAI can visualize biomarkers, metabolic changes, and drug interactions at the molecular level. This has significant implications for personalized medicine, drug development, and theranostics (combined therapy and diagnostics). Research on photoacoustic nanoprobes, gold nanorods, and organic dyes is enabling the detection of cancer cells, atherosclerotic plaques, and neurodegenerative disease markers with unprecedented sensitivity.

Additionally, hybrid imaging systems combining photoacoustics with other modalities, such as MRI, CT, and fluorescence imaging, are gaining traction. These multimodal approaches offer complementary information, improving diagnostic accuracy and providing comprehensive functional and anatomical insights. Hybrid PAI-ultrasound systems, for example, are being developed for breast cancer detection and real-time vascular imaging, further expanding the clinical utility of photoacoustic imaging.

How Are End-Use Applications Driving Photoacoustic Imaging Adoption?

Photoacoustic imaging is being utilized across various medical and industrial applications, offering non-invasive, high-resolution, and real-time imaging capabilities. Its impact is particularly evident in oncology, cardiovascular imaging, neuroscience, dermatology, and ophthalmology, where traditional imaging methods face limitations.

In oncology, PAI is being used for tumor detection, staging, and treatment monitoring. It provides functional and molecular imaging of tumors, enabling early cancer detection and real-time assessment of tumor hypoxia and angiogenesis. Unlike conventional imaging modalities, photoacoustics allows label-free imaging of hemoglobin concentration and oxygen saturation, helping oncologists evaluate tumor aggressiveness and treatment response.

Cardiovascular imaging is another key application area. PAI enables high-resolution visualization of blood vessels, atherosclerotic plaques, and microvascular networks. Its ability to detect oxidative stress, lipid accumulation, and thrombosis formation makes it a powerful tool for stroke risk assessment and early detection of coronary artery disease (CAD). Research is also exploring the potential of photoacoustic-guided interventions in cardiology, allowing real-time visualization during minimally invasive procedures.

In neuroscience, PAI is facilitating brain imaging and neurovascular research. It is used to study cerebral hemodynamics, neuroinflammation, and blood-brain barrier integrity. Unlike MRI and CT, PAI provides high-speed functional imaging without exposure to ionizing radiation, making it ideal for longitudinal studies on neurodegenerative diseases such as Alzheimer's and Parkinson's. Emerging developments in photoacoustic endoscopy are also enabling minimally invasive brain imaging, further expanding its clinical applications.

Dermatology and wound healing assessment are rapidly growing areas of application. PAI allows real-time imaging of skin lesions, melanoma, vascular abnormalities, and burn injuries. Unlike traditional dermoscopy, PAI provides depth-resolved imaging of skin layers, improving the accuracy of skin cancer diagnosis and treatment monitoring. Additionally, photoacoustic-based oxygenation mapping is being used to evaluate wound healing progress and diabetic ulcers, enabling personalized wound care management.

In ophthalmology, PAI is being explored for retinal and choroidal imaging. Its ability to provide oxygen saturation maps of retinal blood vessels makes it a promising tool for detecting diabetic retinopathy, glaucoma, and age-related macular degeneration (AMD). As non-invasive imaging gains importance in eye care, photoacoustic ocular imaging is expected to become a valuable addition to existing diagnostic tools.

What Factors Are Driving the Growth of the Photoacoustic Imaging Market?

The growth in the photoacoustic imaging market is driven by multiple factors, including technological advancements, increasing adoption in biomedical research, and rising demand for non-invasive imaging solutions.

One of the primary growth drivers is the increasing prevalence of chronic diseases, including cancer, cardiovascular disorders, and neurodegenerative conditions. As early diagnosis and treatment monitoring become priorities in healthcare, high-resolution, functional imaging technologies like PAI are gaining adoption. The demand for non-invasive, radiation-free diagnostic tools is also fueling interest in photoacoustic-based medical imaging solutions.

Advancements in laser and ultrasound technology are enhancing the performance and affordability of PAI systems. Innovations in tunable lasers, high-sensitivity detectors, and multimodal imaging integration are improving image quality and expanding the application range of PAI. Additionally, the development of miniaturized and handheld PAI devices is making the technology more accessible for point-of-care diagnostics and portable imaging applications.

The growing investment in biomedical research and precision medicine is further driving market growth. Government agencies, research institutes, and biotech companies are investing heavily in photoacoustic contrast agents, imaging probes, and AI-powered image analysis tools. These investments are fostering new applications in drug development, gene therapy, and targeted molecular imaging, creating new revenue streams for PAI technology providers.

Regulatory approvals and clinical validation are also shaping the market. While PAI is widely used in preclinical research, its transition into clinical settings is accelerating. The increasing number of FDA-approved and CE-marked PAI devices is enhancing market credibility, paving the way for mainstream adoption in hospitals and diagnostic centers.

SCOPE OF STUDY:

The report analyzes the Photoacoustic Imaging market in terms of units by the following Segments, and Geographic Regions/Countries:

Segments:

Product (Photoacoustic Tomography, Photoacoustic Microscopy); Imaging Type (Pre-Clinical, Clinical); Application (Oncology, Cardiology, Angiology, Histology, Interventional Radiology)

Geographic Regions/Countries:

World; United States; Canada; Japan; China; Europe (France; Germany; Italy; United Kingdom; and Rest of Europe); Asia-Pacific; Rest of World.

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TABLE OF CONTENTS

I. METHODOLOGY

II. EXECUTIVE SUMMARY

III. MARKET ANALYSIS

IV. COMPETITION

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